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llvm_backend_general.cpp 96 KB

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  1. gb_internal void lb_add_debug_local_variable(lbProcedure *p, LLVMValueRef ptr, Type *type, Token const &token);
  2. gb_internal LLVMValueRef llvm_const_string_internal(lbModule *m, Type *t, LLVMValueRef data, LLVMValueRef len);
  3. gb_global Entity *lb_global_type_info_data_entity = {};
  4. gb_global lbAddr lb_global_type_info_member_types = {};
  5. gb_global lbAddr lb_global_type_info_member_names = {};
  6. gb_global lbAddr lb_global_type_info_member_offsets = {};
  7. gb_global lbAddr lb_global_type_info_member_usings = {};
  8. gb_global lbAddr lb_global_type_info_member_tags = {};
  9. gb_global isize lb_global_type_info_data_index = 0;
  10. gb_global isize lb_global_type_info_member_types_index = 0;
  11. gb_global isize lb_global_type_info_member_names_index = 0;
  12. gb_global isize lb_global_type_info_member_offsets_index = 0;
  13. gb_global isize lb_global_type_info_member_usings_index = 0;
  14. gb_global isize lb_global_type_info_member_tags_index = 0;
  15. gb_internal void lb_init_module(lbModule *m, Checker *c) {
  16. m->info = &c->info;
  17. gbString module_name = gb_string_make(heap_allocator(), "odin_package");
  18. if (m->file) {
  19. module_name = gb_string_append_fmt(module_name, "-%u", m->file->id+1);
  20. } else if (m->pkg) {
  21. module_name = gb_string_appendc(module_name, "-");
  22. module_name = gb_string_append_length(module_name, m->pkg->name.text, m->pkg->name.len);
  23. } else if (USE_SEPARATE_MODULES) {
  24. module_name = gb_string_appendc(module_name, "-builtin");
  25. }
  26. m->ctx = LLVMContextCreate();
  27. m->mod = LLVMModuleCreateWithNameInContext(module_name ? module_name : "odin_package", m->ctx);
  28. // m->debug_builder = nullptr;
  29. if (build_context.ODIN_DEBUG) {
  30. enum {DEBUG_METADATA_VERSION = 3};
  31. LLVMMetadataRef debug_ref = LLVMValueAsMetadata(LLVMConstInt(LLVMInt32TypeInContext(m->ctx), DEBUG_METADATA_VERSION, true));
  32. LLVMAddModuleFlag(m->mod, LLVMModuleFlagBehaviorWarning, "Debug Info Version", 18, debug_ref);
  33. switch (build_context.metrics.os) {
  34. case TargetOs_windows:
  35. LLVMAddModuleFlag(m->mod,
  36. LLVMModuleFlagBehaviorWarning,
  37. "CodeView", 8,
  38. LLVMValueAsMetadata(LLVMConstInt(LLVMInt32TypeInContext(m->ctx), 1, true)));
  39. break;
  40. case TargetOs_darwin:
  41. // NOTE(bill): Darwin only supports DWARF2 (that I know of)
  42. LLVMAddModuleFlag(m->mod,
  43. LLVMModuleFlagBehaviorWarning,
  44. "Dwarf Version", 13,
  45. LLVMValueAsMetadata(LLVMConstInt(LLVMInt32TypeInContext(m->ctx), 2, true)));
  46. break;
  47. }
  48. m->debug_builder = LLVMCreateDIBuilder(m->mod);
  49. }
  50. gbAllocator a = heap_allocator();
  51. map_init(&m->types);
  52. map_init(&m->func_raw_types);
  53. map_init(&m->struct_field_remapping);
  54. map_init(&m->values);
  55. map_init(&m->soa_values);
  56. string_map_init(&m->members);
  57. string_map_init(&m->procedures);
  58. string_map_init(&m->const_strings);
  59. map_init(&m->function_type_map);
  60. map_init(&m->equal_procs);
  61. map_init(&m->hasher_procs);
  62. map_init(&m->map_get_procs);
  63. map_init(&m->map_set_procs);
  64. if (build_context.use_separate_modules) {
  65. array_init(&m->procedures_to_generate, a, 0, 1<<10);
  66. map_init(&m->procedure_values, 1<<11);
  67. } else {
  68. array_init(&m->procedures_to_generate, a, 0, c->info.all_procedures.count);
  69. map_init(&m->procedure_values, c->info.all_procedures.count*2);
  70. }
  71. array_init(&m->global_procedures_and_types_to_create, a, 0, 1024);
  72. array_init(&m->missing_procedures_to_check, a, 0, 16);
  73. map_init(&m->debug_values);
  74. array_init(&m->debug_incomplete_types, a, 0, 1024);
  75. string_map_init(&m->objc_classes);
  76. string_map_init(&m->objc_selectors);
  77. map_init(&m->map_info_map, 0);
  78. map_init(&m->map_cell_info_map, 0);
  79. map_init(&m->exact_value_compound_literal_addr_map, 1024);
  80. }
  81. gb_internal bool lb_init_generator(lbGenerator *gen, Checker *c) {
  82. if (global_error_collector.count != 0) {
  83. return false;
  84. }
  85. isize tc = c->parser->total_token_count;
  86. if (tc < 2) {
  87. return false;
  88. }
  89. String init_fullpath = c->parser->init_fullpath;
  90. linker_data_init(gen, &c->info, init_fullpath);
  91. gen->info = &c->info;
  92. map_init(&gen->modules, gen->info->packages.count*2);
  93. map_init(&gen->modules_through_ctx, gen->info->packages.count*2);
  94. map_init(&gen->anonymous_proc_lits, 1024);
  95. if (USE_SEPARATE_MODULES) {
  96. for (auto const &entry : gen->info->packages) {
  97. AstPackage *pkg = entry.value;
  98. #if 1
  99. auto m = gb_alloc_item(permanent_allocator(), lbModule);
  100. m->pkg = pkg;
  101. m->gen = gen;
  102. map_set(&gen->modules, cast(void *)pkg, m);
  103. lb_init_module(m, c);
  104. #else
  105. // NOTE(bill): Probably per file is not a good idea, so leave this for later
  106. for (AstFile *file : pkg->files) {
  107. auto m = gb_alloc_item(permanent_allocator(), lbModule);
  108. m->file = file;
  109. m->pkg = pkg;
  110. m->gen = gen;
  111. map_set(&gen->modules, cast(void *)file, m);
  112. lb_init_module(m, c);
  113. }
  114. #endif
  115. }
  116. }
  117. gen->default_module.gen = gen;
  118. map_set(&gen->modules, cast(void *)nullptr, &gen->default_module);
  119. lb_init_module(&gen->default_module, c);
  120. for (auto const &entry : gen->modules) {
  121. lbModule *m = entry.value;
  122. LLVMContextRef ctx = LLVMGetModuleContext(m->mod);
  123. map_set(&gen->modules_through_ctx, ctx, m);
  124. }
  125. return true;
  126. }
  127. gb_internal lbValue lb_global_type_info_data_ptr(lbModule *m) {
  128. lbValue v = lb_find_value_from_entity(m, lb_global_type_info_data_entity);
  129. return v;
  130. }
  131. struct lbLoopData {
  132. lbAddr idx_addr;
  133. lbValue idx;
  134. lbBlock *body;
  135. lbBlock *done;
  136. lbBlock *loop;
  137. };
  138. struct lbCompoundLitElemTempData {
  139. Ast * expr;
  140. lbValue value;
  141. i64 elem_index;
  142. i64 elem_length;
  143. lbValue gep;
  144. };
  145. gb_internal lbLoopData lb_loop_start(lbProcedure *p, isize count, Type *index_type=t_i32) {
  146. lbLoopData data = {};
  147. lbValue max = lb_const_int(p->module, t_int, count);
  148. data.idx_addr = lb_add_local_generated(p, index_type, true);
  149. data.body = lb_create_block(p, "loop.body");
  150. data.done = lb_create_block(p, "loop.done");
  151. data.loop = lb_create_block(p, "loop.loop");
  152. lb_emit_jump(p, data.loop);
  153. lb_start_block(p, data.loop);
  154. data.idx = lb_addr_load(p, data.idx_addr);
  155. lbValue cond = lb_emit_comp(p, Token_Lt, data.idx, max);
  156. lb_emit_if(p, cond, data.body, data.done);
  157. lb_start_block(p, data.body);
  158. return data;
  159. }
  160. gb_internal void lb_loop_end(lbProcedure *p, lbLoopData const &data) {
  161. if (data.idx_addr.addr.value != nullptr) {
  162. lb_emit_increment(p, data.idx_addr.addr);
  163. lb_emit_jump(p, data.loop);
  164. lb_start_block(p, data.done);
  165. }
  166. }
  167. gb_internal void lb_make_global_private_const(LLVMValueRef global_data) {
  168. LLVMSetLinkage(global_data, LLVMPrivateLinkage);
  169. LLVMSetUnnamedAddress(global_data, LLVMGlobalUnnamedAddr);
  170. LLVMSetGlobalConstant(global_data, true);
  171. }
  172. gb_internal void lb_make_global_private_const(lbAddr const &addr) {
  173. lb_make_global_private_const(addr.addr.value);
  174. }
  175. // This emits a GEP at 0, index
  176. gb_internal lbValue lb_emit_epi(lbProcedure *p, lbValue const &value, isize index) {
  177. GB_ASSERT(is_type_pointer(value.type));
  178. Type *type = type_deref(value.type);
  179. LLVMValueRef indices[2] = {
  180. LLVMConstInt(lb_type(p->module, t_int), 0, false),
  181. LLVMConstInt(lb_type(p->module, t_int), cast(unsigned long long)index, false),
  182. };
  183. LLVMTypeRef llvm_type = lb_type(p->module, type);
  184. lbValue res = {};
  185. Type *ptr = base_array_type(type);
  186. res.type = alloc_type_pointer(ptr);
  187. if (LLVMIsConstant(value.value)) {
  188. res.value = LLVMConstGEP2(llvm_type, value.value, indices, gb_count_of(indices));
  189. } else {
  190. res.value = LLVMBuildGEP2(p->builder, llvm_type, value.value, indices, gb_count_of(indices), "");
  191. }
  192. return res;
  193. }
  194. // This emits a GEP at 0, index
  195. gb_internal lbValue lb_emit_epi(lbModule *m, lbValue const &value, isize index) {
  196. GB_ASSERT(is_type_pointer(value.type));
  197. GB_ASSERT(LLVMIsConstant(value.value));
  198. Type *type = type_deref(value.type);
  199. LLVMValueRef indices[2] = {
  200. LLVMConstInt(lb_type(m, t_int), 0, false),
  201. LLVMConstInt(lb_type(m, t_int), cast(unsigned long long)index, false),
  202. };
  203. lbValue res = {};
  204. Type *ptr = base_array_type(type);
  205. res.type = alloc_type_pointer(ptr);
  206. res.value = LLVMConstGEP2(lb_type(m, type), value.value, indices, gb_count_of(indices));
  207. return res;
  208. }
  209. gb_internal LLVMValueRef llvm_zero(lbModule *m) {
  210. return LLVMConstInt(lb_type(m, t_int), 0, false);
  211. }
  212. gb_internal LLVMValueRef llvm_alloca(lbProcedure *p, LLVMTypeRef llvm_type, isize alignment, char const *name) {
  213. LLVMPositionBuilderAtEnd(p->builder, p->decl_block->block);
  214. LLVMValueRef val = LLVMBuildAlloca(p->builder, llvm_type, name);
  215. LLVMSetAlignment(val, cast(unsigned int)alignment);
  216. LLVMPositionBuilderAtEnd(p->builder, p->curr_block->block);
  217. return val;
  218. }
  219. gb_internal lbValue lb_zero(lbModule *m, Type *t) {
  220. lbValue v = {};
  221. v.value = LLVMConstInt(lb_type(m, t), 0, false);
  222. v.type = t;
  223. return v;
  224. }
  225. gb_internal LLVMValueRef llvm_cstring(lbModule *m, String const &str) {
  226. lbValue v = lb_find_or_add_entity_string(m, str);
  227. unsigned indices[1] = {0};
  228. return LLVMConstExtractValue(v.value, indices, gb_count_of(indices));
  229. }
  230. gb_internal bool lb_is_instr_terminating(LLVMValueRef instr) {
  231. if (instr != nullptr) {
  232. LLVMOpcode op = LLVMGetInstructionOpcode(instr);
  233. switch (op) {
  234. case LLVMRet:
  235. case LLVMBr:
  236. case LLVMSwitch:
  237. case LLVMIndirectBr:
  238. case LLVMInvoke:
  239. case LLVMUnreachable:
  240. case LLVMCallBr:
  241. return true;
  242. }
  243. }
  244. return false;
  245. }
  246. gb_internal lbModule *lb_module_of_expr(lbGenerator *gen, Ast *expr) {
  247. GB_ASSERT(expr != nullptr);
  248. lbModule **found = nullptr;
  249. AstFile *file = expr->file();
  250. if (file) {
  251. found = map_get(&gen->modules, cast(void *)file);
  252. if (found) {
  253. return *found;
  254. }
  255. if (file->pkg) {
  256. found = map_get(&gen->modules, cast(void *)file->pkg);
  257. if (found) {
  258. return *found;
  259. }
  260. }
  261. }
  262. return &gen->default_module;
  263. }
  264. gb_internal lbModule *lb_module_of_entity(lbGenerator *gen, Entity *e) {
  265. GB_ASSERT(e != nullptr);
  266. lbModule **found = nullptr;
  267. if (e->kind == Entity_Procedure &&
  268. e->decl_info &&
  269. e->decl_info->code_gen_module) {
  270. return e->decl_info->code_gen_module;
  271. }
  272. if (e->file) {
  273. found = map_get(&gen->modules, cast(void *)e->file);
  274. if (found) {
  275. return *found;
  276. }
  277. }
  278. if (e->pkg) {
  279. found = map_get(&gen->modules, cast(void *)e->pkg);
  280. if (found) {
  281. return *found;
  282. }
  283. }
  284. return &gen->default_module;
  285. }
  286. gb_internal lbAddr lb_addr(lbValue addr) {
  287. lbAddr v = {lbAddr_Default, addr};
  288. if (addr.type != nullptr && is_type_relative_pointer(type_deref(addr.type))) {
  289. GB_ASSERT(is_type_pointer(addr.type));
  290. v.kind = lbAddr_RelativePointer;
  291. } else if (addr.type != nullptr && is_type_relative_slice(type_deref(addr.type))) {
  292. GB_ASSERT(is_type_pointer(addr.type));
  293. v.kind = lbAddr_RelativeSlice;
  294. }
  295. return v;
  296. }
  297. gb_internal lbAddr lb_addr_map(lbValue addr, lbValue map_key, Type *map_type, Type *map_result) {
  298. GB_ASSERT(is_type_pointer(addr.type));
  299. Type *mt = type_deref(addr.type);
  300. GB_ASSERT(is_type_map(mt));
  301. lbAddr v = {lbAddr_Map, addr};
  302. v.map.key = map_key;
  303. v.map.type = map_type;
  304. v.map.result = map_result;
  305. return v;
  306. }
  307. gb_internal lbAddr lb_addr_soa_variable(lbValue addr, lbValue index, Ast *index_expr) {
  308. lbAddr v = {lbAddr_SoaVariable, addr};
  309. v.soa.index = index;
  310. v.soa.index_expr = index_expr;
  311. return v;
  312. }
  313. gb_internal lbAddr lb_addr_swizzle(lbValue addr, Type *array_type, u8 swizzle_count, u8 swizzle_indices[4]) {
  314. GB_ASSERT(is_type_array(array_type));
  315. GB_ASSERT(1 < swizzle_count && swizzle_count <= 4);
  316. lbAddr v = {lbAddr_Swizzle, addr};
  317. v.swizzle.type = array_type;
  318. v.swizzle.count = swizzle_count;
  319. gb_memmove(v.swizzle.indices, swizzle_indices, swizzle_count);
  320. return v;
  321. }
  322. gb_internal lbAddr lb_addr_swizzle_large(lbValue addr, Type *array_type, Slice<i32> const &swizzle_indices) {
  323. GB_ASSERT_MSG(is_type_array(array_type), "%s", type_to_string(array_type));
  324. lbAddr v = {lbAddr_SwizzleLarge, addr};
  325. v.swizzle_large.type = array_type;
  326. v.swizzle_large.indices = swizzle_indices;
  327. return v;
  328. }
  329. gb_internal Type *lb_addr_type(lbAddr const &addr) {
  330. if (addr.addr.value == nullptr) {
  331. return nullptr;
  332. }
  333. switch (addr.kind) {
  334. case lbAddr_Map:
  335. {
  336. Type *t = base_type(addr.map.type);
  337. GB_ASSERT(is_type_map(t));
  338. return t->Map.value;
  339. }
  340. case lbAddr_Swizzle:
  341. return addr.swizzle.type;
  342. case lbAddr_SwizzleLarge:
  343. return addr.swizzle_large.type;
  344. case lbAddr_Context:
  345. if (addr.ctx.sel.index.count > 0) {
  346. Type *t = t_context;
  347. for_array(i, addr.ctx.sel.index) {
  348. GB_ASSERT(is_type_struct(t));
  349. t = base_type(t)->Struct.fields[addr.ctx.sel.index[i]]->type;
  350. }
  351. return t;
  352. }
  353. break;
  354. }
  355. return type_deref(addr.addr.type);
  356. }
  357. gb_internal lbValue lb_addr_get_ptr(lbProcedure *p, lbAddr const &addr) {
  358. if (addr.addr.value == nullptr) {
  359. GB_PANIC("Illegal addr -> nullptr");
  360. return {};
  361. }
  362. switch (addr.kind) {
  363. case lbAddr_Map:
  364. return lb_internal_dynamic_map_get_ptr(p, addr.addr, addr.map.key);
  365. case lbAddr_RelativePointer: {
  366. Type *rel_ptr = base_type(lb_addr_type(addr));
  367. GB_ASSERT(rel_ptr->kind == Type_RelativePointer);
  368. lbValue ptr = lb_emit_conv(p, addr.addr, t_uintptr);
  369. lbValue offset = lb_emit_conv(p, ptr, alloc_type_pointer(rel_ptr->RelativePointer.base_integer));
  370. offset = lb_emit_load(p, offset);
  371. if (!is_type_unsigned(rel_ptr->RelativePointer.base_integer)) {
  372. offset = lb_emit_conv(p, offset, t_i64);
  373. }
  374. offset = lb_emit_conv(p, offset, t_uintptr);
  375. lbValue absolute_ptr = lb_emit_arith(p, Token_Add, ptr, offset, t_uintptr);
  376. absolute_ptr = lb_emit_conv(p, absolute_ptr, rel_ptr->RelativePointer.pointer_type);
  377. lbValue cond = lb_emit_comp(p, Token_CmpEq, offset, lb_const_nil(p->module, rel_ptr->RelativePointer.base_integer));
  378. // NOTE(bill): nil check
  379. lbValue nil_ptr = lb_const_nil(p->module, rel_ptr->RelativePointer.pointer_type);
  380. lbValue final_ptr = lb_emit_select(p, cond, nil_ptr, absolute_ptr);
  381. return final_ptr;
  382. }
  383. case lbAddr_SoaVariable:
  384. // TODO(bill): FIX THIS HACK
  385. return lb_address_from_load(p, lb_addr_load(p, addr));
  386. case lbAddr_Context:
  387. GB_PANIC("lbAddr_Context should be handled elsewhere");
  388. break;
  389. case lbAddr_Swizzle:
  390. case lbAddr_SwizzleLarge:
  391. // TOOD(bill): is this good enough logic?
  392. break;
  393. }
  394. return addr.addr;
  395. }
  396. gb_internal lbValue lb_build_addr_ptr(lbProcedure *p, Ast *expr) {
  397. lbAddr addr = lb_build_addr(p, expr);
  398. return lb_addr_get_ptr(p, addr);
  399. }
  400. gb_internal void lb_emit_bounds_check(lbProcedure *p, Token token, lbValue index, lbValue len) {
  401. if (build_context.no_bounds_check) {
  402. return;
  403. }
  404. if ((p->state_flags & StateFlag_no_bounds_check) != 0) {
  405. return;
  406. }
  407. TEMPORARY_ALLOCATOR_GUARD();
  408. index = lb_emit_conv(p, index, t_int);
  409. len = lb_emit_conv(p, len, t_int);
  410. lbValue file = lb_find_or_add_entity_string(p->module, get_file_path_string(token.pos.file_id));
  411. lbValue line = lb_const_int(p->module, t_i32, token.pos.line);
  412. lbValue column = lb_const_int(p->module, t_i32, token.pos.column);
  413. auto args = array_make<lbValue>(temporary_allocator(), 5);
  414. args[0] = file;
  415. args[1] = line;
  416. args[2] = column;
  417. args[3] = index;
  418. args[4] = len;
  419. lb_emit_runtime_call(p, "bounds_check_error", args);
  420. }
  421. gb_internal void lb_emit_matrix_bounds_check(lbProcedure *p, Token token, lbValue row_index, lbValue column_index, lbValue row_count, lbValue column_count) {
  422. if (build_context.no_bounds_check) {
  423. return;
  424. }
  425. if ((p->state_flags & StateFlag_no_bounds_check) != 0) {
  426. return;
  427. }
  428. TEMPORARY_ALLOCATOR_GUARD();
  429. row_index = lb_emit_conv(p, row_index, t_int);
  430. column_index = lb_emit_conv(p, column_index, t_int);
  431. row_count = lb_emit_conv(p, row_count, t_int);
  432. column_count = lb_emit_conv(p, column_count, t_int);
  433. lbValue file = lb_find_or_add_entity_string(p->module, get_file_path_string(token.pos.file_id));
  434. lbValue line = lb_const_int(p->module, t_i32, token.pos.line);
  435. lbValue column = lb_const_int(p->module, t_i32, token.pos.column);
  436. auto args = array_make<lbValue>(temporary_allocator(), 7);
  437. args[0] = file;
  438. args[1] = line;
  439. args[2] = column;
  440. args[3] = row_index;
  441. args[4] = column_index;
  442. args[5] = row_count;
  443. args[6] = column_count;
  444. lb_emit_runtime_call(p, "matrix_bounds_check_error", args);
  445. }
  446. gb_internal void lb_emit_multi_pointer_slice_bounds_check(lbProcedure *p, Token token, lbValue low, lbValue high) {
  447. if (build_context.no_bounds_check) {
  448. return;
  449. }
  450. if ((p->state_flags & StateFlag_no_bounds_check) != 0) {
  451. return;
  452. }
  453. low = lb_emit_conv(p, low, t_int);
  454. high = lb_emit_conv(p, high, t_int);
  455. lbValue file = lb_find_or_add_entity_string(p->module, get_file_path_string(token.pos.file_id));
  456. lbValue line = lb_const_int(p->module, t_i32, token.pos.line);
  457. lbValue column = lb_const_int(p->module, t_i32, token.pos.column);
  458. auto args = array_make<lbValue>(permanent_allocator(), 5);
  459. args[0] = file;
  460. args[1] = line;
  461. args[2] = column;
  462. args[3] = low;
  463. args[4] = high;
  464. lb_emit_runtime_call(p, "multi_pointer_slice_expr_error", args);
  465. }
  466. gb_internal void lb_emit_slice_bounds_check(lbProcedure *p, Token token, lbValue low, lbValue high, lbValue len, bool lower_value_used) {
  467. if (build_context.no_bounds_check) {
  468. return;
  469. }
  470. if ((p->state_flags & StateFlag_no_bounds_check) != 0) {
  471. return;
  472. }
  473. lbValue file = lb_find_or_add_entity_string(p->module, get_file_path_string(token.pos.file_id));
  474. lbValue line = lb_const_int(p->module, t_i32, token.pos.line);
  475. lbValue column = lb_const_int(p->module, t_i32, token.pos.column);
  476. high = lb_emit_conv(p, high, t_int);
  477. if (!lower_value_used) {
  478. auto args = array_make<lbValue>(permanent_allocator(), 5);
  479. args[0] = file;
  480. args[1] = line;
  481. args[2] = column;
  482. args[3] = high;
  483. args[4] = len;
  484. lb_emit_runtime_call(p, "slice_expr_error_hi", args);
  485. } else {
  486. // No need to convert unless used
  487. low = lb_emit_conv(p, low, t_int);
  488. auto args = array_make<lbValue>(permanent_allocator(), 6);
  489. args[0] = file;
  490. args[1] = line;
  491. args[2] = column;
  492. args[3] = low;
  493. args[4] = high;
  494. args[5] = len;
  495. lb_emit_runtime_call(p, "slice_expr_error_lo_hi", args);
  496. }
  497. }
  498. gb_internal unsigned lb_try_get_alignment(LLVMValueRef addr_ptr, unsigned default_alignment) {
  499. if (LLVMIsAGlobalValue(addr_ptr) || LLVMIsAAllocaInst(addr_ptr) || LLVMIsALoadInst(addr_ptr)) {
  500. return LLVMGetAlignment(addr_ptr);
  501. }
  502. return default_alignment;
  503. }
  504. gb_internal bool lb_try_update_alignment(LLVMValueRef addr_ptr, unsigned alignment) {
  505. if (LLVMIsAGlobalValue(addr_ptr) || LLVMIsAAllocaInst(addr_ptr) || LLVMIsALoadInst(addr_ptr)) {
  506. if (LLVMGetAlignment(addr_ptr) < alignment) {
  507. if (LLVMIsAAllocaInst(addr_ptr) || LLVMIsAGlobalValue(addr_ptr)) {
  508. LLVMSetAlignment(addr_ptr, alignment);
  509. }
  510. }
  511. return LLVMGetAlignment(addr_ptr) >= alignment;
  512. }
  513. return false;
  514. }
  515. gb_internal bool lb_try_update_alignment(lbValue ptr, unsigned alignment) {
  516. return lb_try_update_alignment(ptr.value, alignment);
  517. }
  518. gb_internal bool lb_can_try_to_inline_array_arith(Type *t) {
  519. return type_size_of(t) <= build_context.max_simd_align;
  520. }
  521. gb_internal bool lb_try_vector_cast(lbModule *m, lbValue ptr, LLVMTypeRef *vector_type_) {
  522. Type *array_type = base_type(type_deref(ptr.type));
  523. GB_ASSERT(is_type_array_like(array_type));
  524. i64 count = get_array_type_count(array_type);
  525. Type *elem_type = base_array_type(array_type);
  526. // TODO(bill): Determine what is the correct limit for doing vector arithmetic
  527. if (lb_can_try_to_inline_array_arith(array_type) &&
  528. is_type_valid_vector_elem(elem_type)) {
  529. // Try to treat it like a vector if possible
  530. bool possible = false;
  531. LLVMTypeRef vector_type = LLVMVectorType(lb_type(m, elem_type), cast(unsigned)count);
  532. unsigned vector_alignment = cast(unsigned)lb_alignof(vector_type);
  533. LLVMValueRef addr_ptr = ptr.value;
  534. if (LLVMIsAAllocaInst(addr_ptr) || LLVMIsAGlobalValue(addr_ptr)) {
  535. unsigned alignment = LLVMGetAlignment(addr_ptr);
  536. alignment = gb_max(alignment, vector_alignment);
  537. possible = true;
  538. LLVMSetAlignment(addr_ptr, alignment);
  539. } else if (LLVMIsALoadInst(addr_ptr)) {
  540. unsigned alignment = LLVMGetAlignment(addr_ptr);
  541. possible = alignment >= vector_alignment;
  542. }
  543. // NOTE: Due to alignment requirements, if the pointer is not correctly aligned
  544. // then it cannot be treated as a vector
  545. if (possible) {
  546. if (vector_type_) *vector_type_ =vector_type;
  547. return true;
  548. }
  549. }
  550. return false;
  551. }
  552. gb_internal void lb_addr_store(lbProcedure *p, lbAddr addr, lbValue value) {
  553. if (addr.addr.value == nullptr) {
  554. return;
  555. }
  556. GB_ASSERT(value.type != nullptr);
  557. if (is_type_untyped_uninit(value.type)) {
  558. Type *t = lb_addr_type(addr);
  559. value.type = t;
  560. value.value = LLVMGetUndef(lb_type(p->module, t));
  561. } else if (is_type_untyped_nil(value.type)) {
  562. Type *t = lb_addr_type(addr);
  563. value.type = t;
  564. value.value = LLVMConstNull(lb_type(p->module, t));
  565. }
  566. if (addr.kind == lbAddr_RelativePointer && addr.relative.deref) {
  567. addr = lb_addr(lb_address_from_load(p, lb_addr_load(p, addr)));
  568. }
  569. if (addr.kind == lbAddr_RelativePointer) {
  570. Type *rel_ptr = base_type(lb_addr_type(addr));
  571. GB_ASSERT(rel_ptr->kind == Type_RelativePointer);
  572. value = lb_emit_conv(p, value, rel_ptr->RelativePointer.pointer_type);
  573. GB_ASSERT(is_type_pointer(addr.addr.type));
  574. lbValue ptr = lb_emit_conv(p, addr.addr, t_uintptr);
  575. lbValue val_ptr = lb_emit_conv(p, value, t_uintptr);
  576. lbValue offset = {};
  577. offset.value = LLVMBuildSub(p->builder, val_ptr.value, ptr.value, "");
  578. offset.type = t_uintptr;
  579. if (!is_type_unsigned(rel_ptr->RelativePointer.base_integer)) {
  580. offset = lb_emit_conv(p, offset, t_i64);
  581. }
  582. offset = lb_emit_conv(p, offset, rel_ptr->RelativePointer.base_integer);
  583. lbValue offset_ptr = lb_emit_conv(p, addr.addr, alloc_type_pointer(rel_ptr->RelativePointer.base_integer));
  584. offset = lb_emit_select(p,
  585. lb_emit_comp(p, Token_CmpEq, val_ptr, lb_const_nil(p->module, t_uintptr)),
  586. lb_const_nil(p->module, rel_ptr->RelativePointer.base_integer),
  587. offset
  588. );
  589. LLVMBuildStore(p->builder, offset.value, offset_ptr.value);
  590. return;
  591. } else if (addr.kind == lbAddr_RelativeSlice) {
  592. Type *rel_ptr = base_type(lb_addr_type(addr));
  593. GB_ASSERT(rel_ptr->kind == Type_RelativeSlice);
  594. value = lb_emit_conv(p, value, rel_ptr->RelativeSlice.slice_type);
  595. GB_ASSERT(is_type_pointer(addr.addr.type));
  596. lbValue ptr = lb_emit_conv(p, lb_emit_struct_ep(p, addr.addr, 0), t_uintptr);
  597. lbValue val_ptr = lb_emit_conv(p, lb_slice_elem(p, value), t_uintptr);
  598. lbValue offset = {};
  599. offset.value = LLVMBuildSub(p->builder, val_ptr.value, ptr.value, "");
  600. offset.type = t_uintptr;
  601. if (!is_type_unsigned(rel_ptr->RelativePointer.base_integer)) {
  602. offset = lb_emit_conv(p, offset, t_i64);
  603. }
  604. offset = lb_emit_conv(p, offset, rel_ptr->RelativePointer.base_integer);
  605. lbValue offset_ptr = lb_emit_conv(p, addr.addr, alloc_type_pointer(rel_ptr->RelativePointer.base_integer));
  606. offset = lb_emit_select(p,
  607. lb_emit_comp(p, Token_CmpEq, val_ptr, lb_const_nil(p->module, t_uintptr)),
  608. lb_const_nil(p->module, rel_ptr->RelativePointer.base_integer),
  609. offset
  610. );
  611. LLVMBuildStore(p->builder, offset.value, offset_ptr.value);
  612. lbValue len = lb_slice_len(p, value);
  613. len = lb_emit_conv(p, len, rel_ptr->RelativePointer.base_integer);
  614. lbValue len_ptr = lb_emit_struct_ep(p, addr.addr, 1);
  615. LLVMBuildStore(p->builder, len.value, len_ptr.value);
  616. return;
  617. } else if (addr.kind == lbAddr_Map) {
  618. lb_internal_dynamic_map_set(p, addr.addr, addr.map.type, addr.map.key, value, p->curr_stmt);
  619. return;
  620. } else if (addr.kind == lbAddr_Context) {
  621. lbAddr old_addr = lb_find_or_generate_context_ptr(p);
  622. // IMPORTANT NOTE(bill, 2021-04-22): reuse unused 'context' variables to minimize stack usage
  623. // This has to be done manually since the optimizer cannot determine when this is possible
  624. bool create_new = true;
  625. for_array(i, p->context_stack) {
  626. lbContextData *ctx_data = &p->context_stack[i];
  627. if (ctx_data->ctx.addr.value == old_addr.addr.value) {
  628. if (ctx_data->uses > 0) {
  629. create_new = true;
  630. } else if (p->scope_index > ctx_data->scope_index) {
  631. create_new = true;
  632. } else {
  633. // gb_printf_err("%.*s (curr:%td) (ctx:%td) (uses:%td)\n", LIT(p->name), p->scope_index, ctx_data->scope_index, ctx_data->uses);
  634. create_new = false;
  635. }
  636. break;
  637. }
  638. }
  639. lbValue next = {};
  640. if (create_new) {
  641. lbValue old = lb_addr_load(p, old_addr);
  642. lbAddr next_addr = lb_add_local_generated(p, t_context, true);
  643. lb_addr_store(p, next_addr, old);
  644. lb_push_context_onto_stack(p, next_addr);
  645. next = next_addr.addr;
  646. } else {
  647. next = old_addr.addr;
  648. }
  649. if (addr.ctx.sel.index.count > 0) {
  650. lbValue lhs = lb_emit_deep_field_gep(p, next, addr.ctx.sel);
  651. lbValue rhs = lb_emit_conv(p, value, type_deref(lhs.type));
  652. lb_emit_store(p, lhs, rhs);
  653. } else {
  654. lbValue lhs = next;
  655. lbValue rhs = lb_emit_conv(p, value, lb_addr_type(addr));
  656. lb_emit_store(p, lhs, rhs);
  657. }
  658. return;
  659. } else if (addr.kind == lbAddr_SoaVariable) {
  660. Type *t = type_deref(addr.addr.type);
  661. t = base_type(t);
  662. GB_ASSERT(t->kind == Type_Struct && t->Struct.soa_kind != StructSoa_None);
  663. Type *elem_type = t->Struct.soa_elem;
  664. value = lb_emit_conv(p, value, elem_type);
  665. elem_type = base_type(elem_type);
  666. lbValue index = addr.soa.index;
  667. if (!lb_is_const(index) || t->Struct.soa_kind != StructSoa_Fixed) {
  668. Type *t = base_type(type_deref(addr.addr.type));
  669. GB_ASSERT(t->kind == Type_Struct && t->Struct.soa_kind != StructSoa_None);
  670. lbValue len = lb_soa_struct_len(p, addr.addr);
  671. if (addr.soa.index_expr != nullptr) {
  672. lb_emit_bounds_check(p, ast_token(addr.soa.index_expr), index, len);
  673. }
  674. }
  675. isize field_count = 0;
  676. switch (elem_type->kind) {
  677. case Type_Struct:
  678. field_count = elem_type->Struct.fields.count;
  679. break;
  680. case Type_Array:
  681. field_count = cast(isize)elem_type->Array.count;
  682. break;
  683. }
  684. for (isize i = 0; i < field_count; i++) {
  685. lbValue dst = lb_emit_struct_ep(p, addr.addr, cast(i32)i);
  686. lbValue src = lb_emit_struct_ev(p, value, cast(i32)i);
  687. if (t->Struct.soa_kind == StructSoa_Fixed) {
  688. dst = lb_emit_array_ep(p, dst, index);
  689. lb_emit_store(p, dst, src);
  690. } else {
  691. lbValue field = lb_emit_load(p, dst);
  692. dst = lb_emit_ptr_offset(p, field, index);
  693. lb_emit_store(p, dst, src);
  694. }
  695. }
  696. return;
  697. } else if (addr.kind == lbAddr_Swizzle) {
  698. GB_ASSERT(addr.swizzle.count <= 4);
  699. GB_ASSERT(value.value != nullptr);
  700. value = lb_emit_conv(p, value, lb_addr_type(addr));
  701. lbValue dst = lb_addr_get_ptr(p, addr);
  702. lbValue src = lb_address_from_load_or_generate_local(p, value);
  703. {
  704. lbValue src_ptrs[4] = {};
  705. lbValue src_loads[4] = {};
  706. lbValue dst_ptrs[4] = {};
  707. for (u8 i = 0; i < addr.swizzle.count; i++) {
  708. src_ptrs[i] = lb_emit_array_epi(p, src, i);
  709. }
  710. for (u8 i = 0; i < addr.swizzle.count; i++) {
  711. dst_ptrs[i] = lb_emit_array_epi(p, dst, addr.swizzle.indices[i]);
  712. }
  713. for (u8 i = 0; i < addr.swizzle.count; i++) {
  714. src_loads[i] = lb_emit_load(p, src_ptrs[i]);
  715. }
  716. for (u8 i = 0; i < addr.swizzle.count; i++) {
  717. lb_emit_store(p, dst_ptrs[i], src_loads[i]);
  718. }
  719. }
  720. return;
  721. } else if (addr.kind == lbAddr_SwizzleLarge) {
  722. GB_ASSERT(value.value != nullptr);
  723. value = lb_emit_conv(p, value, lb_addr_type(addr));
  724. lbValue dst = lb_addr_get_ptr(p, addr);
  725. lbValue src = lb_address_from_load_or_generate_local(p, value);
  726. for_array(i, addr.swizzle_large.indices) {
  727. lbValue src_ptr = lb_emit_array_epi(p, src, i);
  728. lbValue dst_ptr = lb_emit_array_epi(p, dst, addr.swizzle_large.indices[i]);
  729. lbValue src_load = lb_emit_load(p, src_ptr);
  730. lb_emit_store(p, dst_ptr, src_load);
  731. }
  732. return;
  733. }
  734. GB_ASSERT(value.value != nullptr);
  735. value = lb_emit_conv(p, value, lb_addr_type(addr));
  736. // if (lb_is_const_or_global(value)) {
  737. // // NOTE(bill): Just bypass the actual storage and set the initializer
  738. // if (LLVMGetValueKind(addr.addr.value) == LLVMGlobalVariableValueKind) {
  739. // LLVMValueRef dst = addr.addr.value;
  740. // LLVMValueRef src = value.value;
  741. // LLVMSetInitializer(dst, src);
  742. // return;
  743. // }
  744. // }
  745. lb_emit_store(p, addr.addr, value);
  746. }
  747. gb_internal bool lb_is_type_proc_recursive(Type *t) {
  748. for (;;) {
  749. if (t == nullptr) {
  750. return false;
  751. }
  752. switch (t->kind) {
  753. case Type_Named:
  754. t = t->Named.base;
  755. break;
  756. case Type_Pointer:
  757. t = t->Pointer.elem;
  758. break;
  759. case Type_Proc:
  760. return true;
  761. default:
  762. return false;
  763. }
  764. }
  765. }
  766. gb_internal void lb_emit_store(lbProcedure *p, lbValue ptr, lbValue value) {
  767. GB_ASSERT(value.value != nullptr);
  768. Type *a = type_deref(ptr.type);
  769. if (LLVMIsNull(value.value)) {
  770. LLVMTypeRef src_t = llvm_addr_type(p->module, ptr);
  771. if (is_type_proc(a)) {
  772. LLVMTypeRef rawptr_type = lb_type(p->module, t_rawptr);
  773. LLVMTypeRef rawptr_ptr_type = LLVMPointerType(rawptr_type, 0);
  774. LLVMBuildStore(p->builder, LLVMConstNull(rawptr_type), LLVMBuildBitCast(p->builder, ptr.value, rawptr_ptr_type, ""));
  775. } else if (lb_sizeof(src_t) <= lb_max_zero_init_size()) {
  776. LLVMBuildStore(p->builder, LLVMConstNull(src_t), ptr.value);
  777. } else {
  778. lb_mem_zero_ptr(p, ptr.value, a, 1);
  779. }
  780. return;
  781. }
  782. if (is_type_boolean(a)) {
  783. // NOTE(bill): There are multiple sized booleans, thus force a conversion (if necessarily)
  784. value = lb_emit_conv(p, value, a);
  785. }
  786. Type *ca = core_type(a);
  787. if (ca->kind == Type_Basic) {
  788. GB_ASSERT_MSG(are_types_identical(ca, core_type(value.type)), "%s != %s", type_to_string(a), type_to_string(value.type));
  789. }
  790. enum {MAX_STORE_SIZE = 64};
  791. if (lb_sizeof(LLVMTypeOf(value.value)) > MAX_STORE_SIZE) {
  792. if (!p->in_multi_assignment && LLVMIsALoadInst(value.value)) {
  793. LLVMValueRef dst_ptr = ptr.value;
  794. LLVMValueRef src_ptr_original = LLVMGetOperand(value.value, 0);
  795. LLVMValueRef src_ptr = LLVMBuildPointerCast(p->builder, src_ptr_original, LLVMTypeOf(dst_ptr), "");
  796. LLVMBuildMemMove(p->builder,
  797. dst_ptr, lb_try_get_alignment(dst_ptr, 1),
  798. src_ptr, lb_try_get_alignment(src_ptr_original, 1),
  799. LLVMConstInt(LLVMInt64TypeInContext(p->module->ctx), lb_sizeof(LLVMTypeOf(value.value)), false));
  800. return;
  801. } else if (LLVMIsConstant(value.value)) {
  802. lbAddr addr = lb_add_global_generated(p->module, value.type, value, nullptr);
  803. lb_make_global_private_const(addr);
  804. LLVMValueRef dst_ptr = ptr.value;
  805. LLVMValueRef src_ptr = addr.addr.value;
  806. src_ptr = LLVMBuildPointerCast(p->builder, src_ptr, LLVMTypeOf(dst_ptr), "");
  807. LLVMBuildMemMove(p->builder,
  808. dst_ptr, lb_try_get_alignment(dst_ptr, 1),
  809. src_ptr, lb_try_get_alignment(src_ptr, 1),
  810. LLVMConstInt(LLVMInt64TypeInContext(p->module->ctx), lb_sizeof(LLVMTypeOf(value.value)), false));
  811. return;
  812. }
  813. }
  814. LLVMValueRef instr = nullptr;
  815. if (lb_is_type_proc_recursive(a)) {
  816. // NOTE(bill, 2020-11-11): Because of certain LLVM rules, a procedure value may be
  817. // stored as regular pointer with no procedure information
  818. LLVMTypeRef rawptr_type = lb_type(p->module, t_rawptr);
  819. LLVMTypeRef rawptr_ptr_type = LLVMPointerType(rawptr_type, 0);
  820. instr = LLVMBuildStore(p->builder,
  821. LLVMBuildPointerCast(p->builder, value.value, rawptr_type, ""),
  822. LLVMBuildPointerCast(p->builder, ptr.value, rawptr_ptr_type, ""));
  823. } else {
  824. Type *ca = core_type(a);
  825. if (ca->kind == Type_Basic || ca->kind == Type_Proc) {
  826. GB_ASSERT_MSG(are_types_identical(ca, core_type(value.type)), "%s != %s", type_to_string(a), type_to_string(value.type));
  827. } else {
  828. GB_ASSERT_MSG(are_types_identical(a, value.type), "%s != %s", type_to_string(a), type_to_string(value.type));
  829. }
  830. instr = LLVMBuildStore(p->builder, value.value, ptr.value);
  831. }
  832. // LLVMSetVolatile(instr, p->in_multi_assignment);
  833. }
  834. gb_internal LLVMTypeRef llvm_addr_type(lbModule *module, lbValue addr_val) {
  835. return lb_type(module, type_deref(addr_val.type));
  836. }
  837. gb_internal lbValue lb_emit_load(lbProcedure *p, lbValue value) {
  838. GB_ASSERT(value.value != nullptr);
  839. if (is_type_multi_pointer(value.type)) {
  840. Type *vt = base_type(value.type);
  841. GB_ASSERT(vt->kind == Type_MultiPointer);
  842. Type *t = vt->MultiPointer.elem;
  843. LLVMValueRef v = LLVMBuildLoad2(p->builder, lb_type(p->module, t), value.value, "");
  844. return lbValue{v, t};
  845. } else if (is_type_soa_pointer(value.type)) {
  846. lbValue ptr = lb_emit_struct_ev(p, value, 0);
  847. lbValue idx = lb_emit_struct_ev(p, value, 1);
  848. lbAddr addr = lb_addr_soa_variable(ptr, idx, nullptr);
  849. return lb_addr_load(p, addr);
  850. }
  851. GB_ASSERT(is_type_pointer(value.type));
  852. Type *t = type_deref(value.type);
  853. LLVMValueRef v = LLVMBuildLoad2(p->builder, lb_type(p->module, t), value.value, "");
  854. return lbValue{v, t};
  855. }
  856. gb_internal lbValue lb_addr_load(lbProcedure *p, lbAddr const &addr) {
  857. GB_ASSERT(addr.addr.value != nullptr);
  858. if (addr.kind == lbAddr_RelativePointer) {
  859. Type *rel_ptr = base_type(lb_addr_type(addr));
  860. GB_ASSERT(rel_ptr->kind == Type_RelativePointer);
  861. lbValue ptr = lb_emit_conv(p, addr.addr, t_uintptr);
  862. lbValue offset = lb_emit_conv(p, ptr, alloc_type_pointer(rel_ptr->RelativePointer.base_integer));
  863. offset = lb_emit_load(p, offset);
  864. if (!is_type_unsigned(rel_ptr->RelativePointer.base_integer)) {
  865. offset = lb_emit_conv(p, offset, t_i64);
  866. }
  867. offset = lb_emit_conv(p, offset, t_uintptr);
  868. lbValue absolute_ptr = lb_emit_arith(p, Token_Add, ptr, offset, t_uintptr);
  869. absolute_ptr = lb_emit_conv(p, absolute_ptr, rel_ptr->RelativePointer.pointer_type);
  870. lbValue cond = lb_emit_comp(p, Token_CmpEq, offset, lb_const_nil(p->module, rel_ptr->RelativePointer.base_integer));
  871. // NOTE(bill): nil check
  872. lbValue nil_ptr = lb_const_nil(p->module, rel_ptr->RelativePointer.pointer_type);
  873. lbValue final_ptr = {};
  874. final_ptr.type = absolute_ptr.type;
  875. final_ptr.value = LLVMBuildSelect(p->builder, cond.value, nil_ptr.value, absolute_ptr.value, "");
  876. return lb_emit_load(p, final_ptr);
  877. } else if (addr.kind == lbAddr_RelativeSlice) {
  878. Type *rel_ptr = base_type(lb_addr_type(addr));
  879. GB_ASSERT(rel_ptr->kind == Type_RelativeSlice);
  880. lbValue offset_ptr = lb_emit_struct_ep(p, addr.addr, 0);
  881. lbValue ptr = lb_emit_conv(p, offset_ptr, t_uintptr);
  882. lbValue offset = lb_emit_load(p, offset_ptr);
  883. if (!is_type_unsigned(rel_ptr->RelativeSlice.base_integer)) {
  884. offset = lb_emit_conv(p, offset, t_i64);
  885. }
  886. offset = lb_emit_conv(p, offset, t_uintptr);
  887. lbValue absolute_ptr = lb_emit_arith(p, Token_Add, ptr, offset, t_uintptr);
  888. Type *slice_type = base_type(rel_ptr->RelativeSlice.slice_type);
  889. GB_ASSERT(rel_ptr->RelativeSlice.slice_type->kind == Type_Slice);
  890. Type *slice_elem = slice_type->Slice.elem;
  891. Type *slice_elem_ptr = alloc_type_pointer(slice_elem);
  892. absolute_ptr = lb_emit_conv(p, absolute_ptr, slice_elem_ptr);
  893. lbValue cond = lb_emit_comp(p, Token_CmpEq, offset, lb_const_nil(p->module, rel_ptr->RelativeSlice.base_integer));
  894. // NOTE(bill): nil check
  895. lbValue nil_ptr = lb_const_nil(p->module, slice_elem_ptr);
  896. lbValue data = {};
  897. data.type = absolute_ptr.type;
  898. data.value = LLVMBuildSelect(p->builder, cond.value, nil_ptr.value, absolute_ptr.value, "");
  899. lbValue len = lb_emit_load(p, lb_emit_struct_ep(p, addr.addr, 1));
  900. len = lb_emit_conv(p, len, t_int);
  901. lbAddr slice = lb_add_local_generated(p, slice_type, false);
  902. lb_fill_slice(p, slice, data, len);
  903. return lb_addr_load(p, slice);
  904. } else if (addr.kind == lbAddr_Map) {
  905. Type *map_type = base_type(type_deref(addr.addr.type));
  906. GB_ASSERT(map_type->kind == Type_Map);
  907. lbAddr v = lb_add_local_generated(p, map_type->Map.lookup_result_type, true);
  908. lbValue ptr = lb_internal_dynamic_map_get_ptr(p, addr.addr, addr.map.key);
  909. lbValue ok = lb_emit_conv(p, lb_emit_comp_against_nil(p, Token_NotEq, ptr), t_bool);
  910. lb_emit_store(p, lb_emit_struct_ep(p, v.addr, 1), ok);
  911. lbBlock *then = lb_create_block(p, "map.get.then");
  912. lbBlock *done = lb_create_block(p, "map.get.done");
  913. lb_emit_if(p, ok, then, done);
  914. lb_start_block(p, then);
  915. {
  916. // TODO(bill): mem copy it instead?
  917. lbValue gep0 = lb_emit_struct_ep(p, v.addr, 0);
  918. lbValue value = lb_emit_conv(p, ptr, gep0.type);
  919. lb_emit_store(p, gep0, lb_emit_load(p, value));
  920. }
  921. lb_emit_jump(p, done);
  922. lb_start_block(p, done);
  923. if (is_type_tuple(addr.map.result)) {
  924. return lb_addr_load(p, v);
  925. } else {
  926. lbValue single = lb_emit_struct_ep(p, v.addr, 0);
  927. return lb_emit_load(p, single);
  928. }
  929. } else if (addr.kind == lbAddr_Context) {
  930. lbValue a = addr.addr;
  931. for_array(i, p->context_stack) {
  932. lbContextData *ctx_data = &p->context_stack[i];
  933. if (ctx_data->ctx.addr.value == a.value) {
  934. ctx_data->uses += 1;
  935. break;
  936. }
  937. }
  938. a.value = LLVMBuildPointerCast(p->builder, a.value, lb_type(p->module, t_context_ptr), "");
  939. if (addr.ctx.sel.index.count > 0) {
  940. lbValue b = lb_emit_deep_field_gep(p, a, addr.ctx.sel);
  941. return lb_emit_load(p, b);
  942. } else {
  943. return lb_emit_load(p, a);
  944. }
  945. } else if (addr.kind == lbAddr_SoaVariable) {
  946. Type *t = type_deref(addr.addr.type);
  947. t = base_type(t);
  948. GB_ASSERT(t->kind == Type_Struct && t->Struct.soa_kind != StructSoa_None);
  949. Type *elem = t->Struct.soa_elem;
  950. lbValue len = {};
  951. if (t->Struct.soa_kind == StructSoa_Fixed) {
  952. len = lb_const_int(p->module, t_int, t->Struct.soa_count);
  953. } else {
  954. lbValue v = lb_emit_load(p, addr.addr);
  955. len = lb_soa_struct_len(p, v);
  956. }
  957. lbAddr res = lb_add_local_generated(p, elem, true);
  958. if (addr.soa.index_expr != nullptr && (!lb_is_const(addr.soa.index) || t->Struct.soa_kind != StructSoa_Fixed)) {
  959. lb_emit_bounds_check(p, ast_token(addr.soa.index_expr), addr.soa.index, len);
  960. }
  961. if (t->Struct.soa_kind == StructSoa_Fixed) {
  962. for_array(i, t->Struct.fields) {
  963. Entity *field = t->Struct.fields[i];
  964. Type *base_type = field->type;
  965. GB_ASSERT(base_type->kind == Type_Array);
  966. lbValue dst = lb_emit_struct_ep(p, res.addr, cast(i32)i);
  967. lbValue src_ptr = lb_emit_struct_ep(p, addr.addr, cast(i32)i);
  968. src_ptr = lb_emit_array_ep(p, src_ptr, addr.soa.index);
  969. lbValue src = lb_emit_load(p, src_ptr);
  970. lb_emit_store(p, dst, src);
  971. }
  972. } else {
  973. isize field_count = t->Struct.fields.count;
  974. if (t->Struct.soa_kind == StructSoa_Slice) {
  975. field_count -= 1;
  976. } else if (t->Struct.soa_kind == StructSoa_Dynamic) {
  977. field_count -= 3;
  978. }
  979. for (isize i = 0; i < field_count; i++) {
  980. Entity *field = t->Struct.fields[i];
  981. Type *base_type = field->type;
  982. GB_ASSERT(base_type->kind == Type_Pointer);
  983. lbValue dst = lb_emit_struct_ep(p, res.addr, cast(i32)i);
  984. lbValue src_ptr = lb_emit_struct_ep(p, addr.addr, cast(i32)i);
  985. lbValue src = lb_emit_load(p, src_ptr);
  986. src = lb_emit_ptr_offset(p, src, addr.soa.index);
  987. src = lb_emit_load(p, src);
  988. lb_emit_store(p, dst, src);
  989. }
  990. }
  991. return lb_addr_load(p, res);
  992. } else if (addr.kind == lbAddr_Swizzle) {
  993. Type *array_type = base_type(addr.swizzle.type);
  994. GB_ASSERT(array_type->kind == Type_Array);
  995. unsigned res_align = cast(unsigned)type_align_of(addr.swizzle.type);
  996. static u8 const ordered_indices[4] = {0, 1, 2, 3};
  997. if (gb_memcompare(ordered_indices, addr.swizzle.indices, addr.swizzle.count) == 0) {
  998. if (lb_try_update_alignment(addr.addr, res_align)) {
  999. Type *pt = alloc_type_pointer(addr.swizzle.type);
  1000. lbValue res = {};
  1001. res.value = LLVMBuildPointerCast(p->builder, addr.addr.value, lb_type(p->module, pt), "");
  1002. res.type = pt;
  1003. return lb_emit_load(p, res);
  1004. }
  1005. }
  1006. lbAddr res = lb_add_local_generated(p, addr.swizzle.type, false);
  1007. lbValue ptr = lb_addr_get_ptr(p, res);
  1008. GB_ASSERT(is_type_pointer(ptr.type));
  1009. LLVMTypeRef vector_type = nullptr;
  1010. if (lb_try_vector_cast(p->module, addr.addr, &vector_type)) {
  1011. LLVMSetAlignment(res.addr.value, cast(unsigned)lb_alignof(vector_type));
  1012. LLVMValueRef vp = LLVMBuildPointerCast(p->builder, addr.addr.value, LLVMPointerType(vector_type, 0), "");
  1013. LLVMValueRef v = LLVMBuildLoad2(p->builder, vector_type, vp, "");
  1014. LLVMValueRef scalars[4] = {};
  1015. for (u8 i = 0; i < addr.swizzle.count; i++) {
  1016. scalars[i] = LLVMConstInt(lb_type(p->module, t_u32), addr.swizzle.indices[i], false);
  1017. }
  1018. LLVMValueRef mask = LLVMConstVector(scalars, addr.swizzle.count);
  1019. LLVMValueRef sv = llvm_basic_shuffle(p, v, mask);
  1020. LLVMValueRef dst = LLVMBuildPointerCast(p->builder, ptr.value, LLVMPointerType(LLVMTypeOf(sv), 0), "");
  1021. LLVMBuildStore(p->builder, sv, dst);
  1022. } else {
  1023. for (u8 i = 0; i < addr.swizzle.count; i++) {
  1024. u8 index = addr.swizzle.indices[i];
  1025. lbValue dst = lb_emit_array_epi(p, ptr, i);
  1026. lbValue src = lb_emit_array_epi(p, addr.addr, index);
  1027. lb_emit_store(p, dst, lb_emit_load(p, src));
  1028. }
  1029. }
  1030. return lb_addr_load(p, res);
  1031. } else if (addr.kind == lbAddr_SwizzleLarge) {
  1032. Type *array_type = base_type(addr.swizzle_large.type);
  1033. GB_ASSERT(array_type->kind == Type_Array);
  1034. unsigned res_align = cast(unsigned)type_align_of(addr.swizzle_large.type);
  1035. gb_unused(res_align);
  1036. lbAddr res = lb_add_local_generated(p, addr.swizzle_large.type, false);
  1037. lbValue ptr = lb_addr_get_ptr(p, res);
  1038. GB_ASSERT(is_type_pointer(ptr.type));
  1039. for_array(i, addr.swizzle_large.indices) {
  1040. i32 index = addr.swizzle_large.indices[i];
  1041. lbValue dst = lb_emit_array_epi(p, ptr, i);
  1042. lbValue src = lb_emit_array_epi(p, addr.addr, index);
  1043. lb_emit_store(p, dst, lb_emit_load(p, src));
  1044. }
  1045. return lb_addr_load(p, res);
  1046. }
  1047. if (is_type_proc(addr.addr.type)) {
  1048. return addr.addr;
  1049. }
  1050. return lb_emit_load(p, addr.addr);
  1051. }
  1052. gb_internal lbValue lb_const_union_tag(lbModule *m, Type *u, Type *v) {
  1053. return lb_const_value(m, union_tag_type(u), exact_value_i64(union_variant_index(u, v)));
  1054. }
  1055. gb_internal lbValue lb_emit_union_tag_ptr(lbProcedure *p, lbValue u) {
  1056. Type *t = u.type;
  1057. GB_ASSERT_MSG(is_type_pointer(t) &&
  1058. is_type_union(type_deref(t)), "%s", type_to_string(t));
  1059. Type *ut = type_deref(t);
  1060. GB_ASSERT(!is_type_union_maybe_pointer_original_alignment(ut));
  1061. GB_ASSERT(!is_type_union_maybe_pointer(ut));
  1062. GB_ASSERT(type_size_of(ut) > 0);
  1063. Type *tag_type = union_tag_type(ut);
  1064. LLVMTypeRef uvt = llvm_addr_type(p->module, u);
  1065. unsigned element_count = LLVMCountStructElementTypes(uvt);
  1066. GB_ASSERT_MSG(element_count >= 2, "element_count=%u (%s) != (%s)", element_count, type_to_string(ut), LLVMPrintTypeToString(uvt));
  1067. lbValue tag_ptr = {};
  1068. tag_ptr.value = LLVMBuildStructGEP2(p->builder, uvt, u.value, 1, "");
  1069. tag_ptr.type = alloc_type_pointer(tag_type);
  1070. return tag_ptr;
  1071. }
  1072. gb_internal lbValue lb_emit_union_tag_value(lbProcedure *p, lbValue u) {
  1073. lbValue ptr = lb_address_from_load_or_generate_local(p, u);
  1074. lbValue tag_ptr = lb_emit_union_tag_ptr(p, ptr);
  1075. return lb_emit_load(p, tag_ptr);
  1076. }
  1077. gb_internal void lb_emit_store_union_variant_tag(lbProcedure *p, lbValue parent, Type *variant_type) {
  1078. Type *t = type_deref(parent.type);
  1079. GB_ASSERT(is_type_union(t));
  1080. if (is_type_union_maybe_pointer(t) || type_size_of(t) == 0) {
  1081. // No tag needed!
  1082. } else {
  1083. lbValue tag_ptr = lb_emit_union_tag_ptr(p, parent);
  1084. lb_emit_store(p, tag_ptr, lb_const_union_tag(p->module, t, variant_type));
  1085. }
  1086. }
  1087. gb_internal void lb_emit_store_union_variant(lbProcedure *p, lbValue parent, lbValue variant, Type *variant_type) {
  1088. Type *pt = base_type(type_deref(parent.type));
  1089. GB_ASSERT(pt->kind == Type_Union);
  1090. if (pt->Union.kind == UnionType_shared_nil) {
  1091. lbBlock *if_nil = lb_create_block(p, "shared_nil.if_nil");
  1092. lbBlock *if_not_nil = lb_create_block(p, "shared_nil.if_not_nil");
  1093. lbBlock *done = lb_create_block(p, "shared_nil.done");
  1094. lbValue cond_is_nil = lb_emit_comp_against_nil(p, Token_CmpEq, variant);
  1095. lb_emit_if(p, cond_is_nil, if_nil, if_not_nil);
  1096. lb_start_block(p, if_nil);
  1097. lb_emit_store(p, parent, lb_const_nil(p->module, type_deref(parent.type)));
  1098. lb_emit_jump(p, done);
  1099. lb_start_block(p, if_not_nil);
  1100. lbValue underlying = lb_emit_conv(p, parent, alloc_type_pointer(variant_type));
  1101. lb_emit_store(p, underlying, variant);
  1102. lb_emit_store_union_variant_tag(p, parent, variant_type);
  1103. lb_emit_jump(p, done);
  1104. lb_start_block(p, done);
  1105. } else {
  1106. lbValue underlying = lb_emit_conv(p, parent, alloc_type_pointer(variant_type));
  1107. lb_emit_store(p, underlying, variant);
  1108. lb_emit_store_union_variant_tag(p, parent, variant_type);
  1109. }
  1110. }
  1111. gb_internal void lb_clone_struct_type(LLVMTypeRef dst, LLVMTypeRef src) {
  1112. TEMPORARY_ALLOCATOR_GUARD();
  1113. unsigned field_count = LLVMCountStructElementTypes(src);
  1114. LLVMTypeRef *fields = gb_alloc_array(temporary_allocator(), LLVMTypeRef, field_count);
  1115. LLVMGetStructElementTypes(src, fields);
  1116. LLVMStructSetBody(dst, fields, field_count, LLVMIsPackedStruct(src));
  1117. }
  1118. gb_internal String lb_mangle_name(lbModule *m, Entity *e) {
  1119. String name = e->token.string;
  1120. AstPackage *pkg = e->pkg;
  1121. GB_ASSERT_MSG(pkg != nullptr, "Missing package for '%.*s'", LIT(name));
  1122. String pkgn = pkg->name;
  1123. GB_ASSERT(!rune_is_digit(pkgn[0]));
  1124. if (pkgn == "llvm") {
  1125. pkgn = str_lit("llvm$");
  1126. }
  1127. isize max_len = pkgn.len + 1 + name.len + 1;
  1128. bool require_suffix_id = is_type_polymorphic(e->type, true);
  1129. if ((e->scope->flags & (ScopeFlag_File | ScopeFlag_Pkg)) == 0) {
  1130. require_suffix_id = true;
  1131. } else if (is_blank_ident(e->token)) {
  1132. require_suffix_id = true;
  1133. }if (e->flags & EntityFlag_NotExported) {
  1134. require_suffix_id = true;
  1135. }
  1136. if (require_suffix_id) {
  1137. max_len += 21;
  1138. }
  1139. char *new_name = gb_alloc_array(permanent_allocator(), char, max_len);
  1140. isize new_name_len = gb_snprintf(
  1141. new_name, max_len,
  1142. "%.*s" ABI_PKG_NAME_SEPARATOR "%.*s", LIT(pkgn), LIT(name)
  1143. );
  1144. if (require_suffix_id) {
  1145. char *str = new_name + new_name_len-1;
  1146. isize len = max_len-new_name_len;
  1147. isize extra = gb_snprintf(str, len, "-%llu", cast(unsigned long long)e->id);
  1148. new_name_len += extra-1;
  1149. }
  1150. String mangled_name = make_string((u8 const *)new_name, new_name_len-1);
  1151. return mangled_name;
  1152. }
  1153. gb_internal String lb_set_nested_type_name_ir_mangled_name(Entity *e, lbProcedure *p, lbModule *module) {
  1154. // NOTE(bill, 2020-03-08): A polymorphic procedure may take a nested type declaration
  1155. // and as a result, the declaration does not have time to determine what it should be
  1156. GB_ASSERT(e != nullptr && e->kind == Entity_TypeName);
  1157. if (e->TypeName.ir_mangled_name.len != 0) {
  1158. return e->TypeName.ir_mangled_name;
  1159. }
  1160. GB_ASSERT((e->scope->flags & ScopeFlag_File) == 0);
  1161. if (p == nullptr) {
  1162. Entity *proc = nullptr;
  1163. if (e->parent_proc_decl != nullptr) {
  1164. proc = e->parent_proc_decl->entity;
  1165. } else {
  1166. Scope *scope = e->scope;
  1167. while (scope != nullptr && (scope->flags & ScopeFlag_Proc) == 0) {
  1168. scope = scope->parent;
  1169. }
  1170. GB_ASSERT(scope != nullptr);
  1171. GB_ASSERT(scope->flags & ScopeFlag_Proc);
  1172. proc = scope->procedure_entity;
  1173. }
  1174. GB_ASSERT(proc->kind == Entity_Procedure);
  1175. if (proc->code_gen_procedure != nullptr) {
  1176. p = proc->code_gen_procedure;
  1177. }
  1178. }
  1179. // NOTE(bill): Generate a new name
  1180. // parent_proc.name-guid
  1181. String ts_name = e->token.string;
  1182. if (p != nullptr) {
  1183. isize name_len = p->name.len + 1 + ts_name.len + 1 + 10 + 1;
  1184. char *name_text = gb_alloc_array(permanent_allocator(), char, name_len);
  1185. u32 guid = 1+p->module->nested_type_name_guid.fetch_add(1);
  1186. name_len = gb_snprintf(name_text, name_len, "%.*s" ABI_PKG_NAME_SEPARATOR "%.*s-%u", LIT(p->name), LIT(ts_name), guid);
  1187. String name = make_string(cast(u8 *)name_text, name_len-1);
  1188. e->TypeName.ir_mangled_name = name;
  1189. return name;
  1190. } else {
  1191. // NOTE(bill): a nested type be required before its parameter procedure exists. Just give it a temp name for now
  1192. isize name_len = 9 + 1 + ts_name.len + 1 + 10 + 1;
  1193. char *name_text = gb_alloc_array(permanent_allocator(), char, name_len);
  1194. static std::atomic<u32> guid;
  1195. name_len = gb_snprintf(name_text, name_len, "_internal" ABI_PKG_NAME_SEPARATOR "%.*s-%u", LIT(ts_name), 1+guid.fetch_add(1));
  1196. String name = make_string(cast(u8 *)name_text, name_len-1);
  1197. e->TypeName.ir_mangled_name = name;
  1198. return name;
  1199. }
  1200. }
  1201. gb_internal String lb_get_entity_name(lbModule *m, Entity *e, String default_name) {
  1202. if (e != nullptr && e->kind == Entity_TypeName && e->TypeName.ir_mangled_name.len != 0) {
  1203. return e->TypeName.ir_mangled_name;
  1204. }
  1205. GB_ASSERT(e != nullptr);
  1206. if (e->pkg == nullptr) {
  1207. return e->token.string;
  1208. }
  1209. if (e->kind == Entity_TypeName && (e->scope->flags & ScopeFlag_File) == 0) {
  1210. return lb_set_nested_type_name_ir_mangled_name(e, nullptr, m);
  1211. }
  1212. String name = {};
  1213. bool no_name_mangle = false;
  1214. if (e->kind == Entity_Variable) {
  1215. bool is_foreign = e->Variable.is_foreign;
  1216. bool is_export = e->Variable.is_export;
  1217. no_name_mangle = e->Variable.link_name.len > 0 || is_foreign || is_export;
  1218. if (e->Variable.link_name.len > 0) {
  1219. return e->Variable.link_name;
  1220. }
  1221. } else if (e->kind == Entity_Procedure && e->Procedure.link_name.len > 0) {
  1222. return e->Procedure.link_name;
  1223. } else if (e->kind == Entity_Procedure && e->Procedure.is_export) {
  1224. no_name_mangle = true;
  1225. }
  1226. if (!no_name_mangle) {
  1227. name = lb_mangle_name(m, e);
  1228. }
  1229. if (name.len == 0) {
  1230. name = e->token.string;
  1231. }
  1232. if (e->kind == Entity_TypeName) {
  1233. e->TypeName.ir_mangled_name = name;
  1234. } else if (e->kind == Entity_Procedure) {
  1235. e->Procedure.link_name = name;
  1236. }
  1237. return name;
  1238. }
  1239. gb_internal LLVMTypeRef lb_type_internal_for_procedures_raw(lbModule *m, Type *type) {
  1240. Type *original_type = type;
  1241. type = base_type(original_type);
  1242. GB_ASSERT(type->kind == Type_Proc);
  1243. mutex_lock(&m->func_raw_types_mutex);
  1244. defer (mutex_unlock(&m->func_raw_types_mutex));
  1245. LLVMTypeRef *found = map_get(&m->func_raw_types, type);
  1246. if (found) {
  1247. return *found;
  1248. }
  1249. unsigned param_count = 0;
  1250. if (type->Proc.param_count != 0) {
  1251. GB_ASSERT(type->Proc.params->kind == Type_Tuple);
  1252. for_array(i, type->Proc.params->Tuple.variables) {
  1253. Entity *e = type->Proc.params->Tuple.variables[i];
  1254. if (e->kind != Entity_Variable) {
  1255. continue;
  1256. }
  1257. if (e->flags & EntityFlag_CVarArg) {
  1258. continue;
  1259. }
  1260. param_count += 1;
  1261. }
  1262. }
  1263. m->internal_type_level += 1;
  1264. defer (m->internal_type_level -= 1);
  1265. bool return_is_tuple = false;
  1266. LLVMTypeRef ret = nullptr;
  1267. LLVMTypeRef *params = gb_alloc_array(permanent_allocator(), LLVMTypeRef, param_count);
  1268. bool *params_by_ptr = gb_alloc_array(permanent_allocator(), bool, param_count);
  1269. if (type->Proc.result_count != 0) {
  1270. Type *single_ret = reduce_tuple_to_single_type(type->Proc.results);
  1271. if (is_type_proc(single_ret)) {
  1272. single_ret = t_rawptr;
  1273. }
  1274. ret = lb_type(m, single_ret);
  1275. if (is_type_tuple(single_ret)) {
  1276. return_is_tuple = true;
  1277. }
  1278. if (is_type_boolean(single_ret) &&
  1279. is_calling_convention_none(type->Proc.calling_convention) &&
  1280. type_size_of(single_ret) <= 1) {
  1281. ret = LLVMInt1TypeInContext(m->ctx);
  1282. }
  1283. }
  1284. unsigned param_index = 0;
  1285. if (type->Proc.param_count != 0) {
  1286. GB_ASSERT(type->Proc.params->kind == Type_Tuple);
  1287. for_array(i, type->Proc.params->Tuple.variables) {
  1288. Entity *e = type->Proc.params->Tuple.variables[i];
  1289. if (e->kind != Entity_Variable) {
  1290. continue;
  1291. }
  1292. if (e->flags & EntityFlag_CVarArg) {
  1293. continue;
  1294. }
  1295. Type *e_type = reduce_tuple_to_single_type(e->type);
  1296. bool param_is_by_ptr = false;
  1297. LLVMTypeRef param_type = nullptr;
  1298. if (e->flags & EntityFlag_ByPtr) {
  1299. // it will become a pointer afterwards by making it indirect
  1300. param_type = lb_type(m, e_type);
  1301. param_is_by_ptr = true;
  1302. } else if (is_type_boolean(e_type) &&
  1303. type_size_of(e_type) <= 1) {
  1304. param_type = LLVMInt1TypeInContext(m->ctx);
  1305. } else {
  1306. if (is_type_proc(e_type)) {
  1307. param_type = lb_type(m, t_rawptr);
  1308. } else {
  1309. param_type = lb_type(m, e_type);
  1310. }
  1311. }
  1312. params_by_ptr[param_index] = param_is_by_ptr;
  1313. params[param_index++] = param_type;
  1314. }
  1315. }
  1316. GB_ASSERT(param_index == param_count);
  1317. lbFunctionType *ft = lb_get_abi_info(m->ctx, params, param_count, ret, ret != nullptr, return_is_tuple, type->Proc.calling_convention, type);
  1318. {
  1319. for_array(j, ft->args) {
  1320. auto arg = ft->args[j];
  1321. GB_ASSERT_MSG(LLVMGetTypeContext(arg.type) == ft->ctx,
  1322. "\n\t%s %td/%td"
  1323. "\n\tArgTypeCtx: %p\n\tCurrentCtx: %p\n\tGlobalCtx: %p",
  1324. LLVMPrintTypeToString(arg.type),
  1325. j, ft->args.count,
  1326. LLVMGetTypeContext(arg.type), ft->ctx, LLVMGetGlobalContext());
  1327. }
  1328. GB_ASSERT_MSG(LLVMGetTypeContext(ft->ret.type) == ft->ctx,
  1329. "\n\t%s"
  1330. "\n\tRetTypeCtx: %p\n\tCurrentCtx: %p\n\tGlobalCtx: %p",
  1331. LLVMPrintTypeToString(ft->ret.type),
  1332. LLVMGetTypeContext(ft->ret.type), ft->ctx, LLVMGetGlobalContext());
  1333. }
  1334. for (unsigned i = 0; i < param_count; i++) {
  1335. if (params_by_ptr[i]) {
  1336. // NOTE(bill): The parameter needs to be passed "indirectly", override it
  1337. ft->args[i].kind = lbArg_Indirect;
  1338. ft->args[i].attribute = nullptr;
  1339. ft->args[i].align_attribute = nullptr;
  1340. ft->args[i].byval_alignment = 0;
  1341. ft->args[i].is_byval = false;
  1342. }
  1343. }
  1344. map_set(&m->function_type_map, type, ft);
  1345. LLVMTypeRef new_abi_fn_type = lb_function_type_to_llvm_raw(ft, type->Proc.c_vararg);
  1346. GB_ASSERT_MSG(LLVMGetTypeContext(new_abi_fn_type) == m->ctx,
  1347. "\n\tFuncTypeCtx: %p\n\tCurrentCtx: %p\n\tGlobalCtx: %p",
  1348. LLVMGetTypeContext(new_abi_fn_type), m->ctx, LLVMGetGlobalContext());
  1349. map_set(&m->func_raw_types, type, new_abi_fn_type);
  1350. return new_abi_fn_type;
  1351. }
  1352. gb_internal LLVMTypeRef lb_type_internal(lbModule *m, Type *type) {
  1353. LLVMContextRef ctx = m->ctx;
  1354. i64 size = type_size_of(type); // Check size
  1355. gb_unused(size);
  1356. GB_ASSERT(type != t_invalid);
  1357. bool bigger_int = build_context.ptr_size != build_context.int_size;
  1358. switch (type->kind) {
  1359. case Type_Basic:
  1360. switch (type->Basic.kind) {
  1361. case Basic_llvm_bool: return LLVMInt1TypeInContext(ctx);
  1362. case Basic_bool: return LLVMInt8TypeInContext(ctx);
  1363. case Basic_b8: return LLVMInt8TypeInContext(ctx);
  1364. case Basic_b16: return LLVMInt16TypeInContext(ctx);
  1365. case Basic_b32: return LLVMInt32TypeInContext(ctx);
  1366. case Basic_b64: return LLVMInt64TypeInContext(ctx);
  1367. case Basic_i8: return LLVMInt8TypeInContext(ctx);
  1368. case Basic_u8: return LLVMInt8TypeInContext(ctx);
  1369. case Basic_i16: return LLVMInt16TypeInContext(ctx);
  1370. case Basic_u16: return LLVMInt16TypeInContext(ctx);
  1371. case Basic_i32: return LLVMInt32TypeInContext(ctx);
  1372. case Basic_u32: return LLVMInt32TypeInContext(ctx);
  1373. case Basic_i64: return LLVMInt64TypeInContext(ctx);
  1374. case Basic_u64: return LLVMInt64TypeInContext(ctx);
  1375. case Basic_i128: return LLVMInt128TypeInContext(ctx);
  1376. case Basic_u128: return LLVMInt128TypeInContext(ctx);
  1377. case Basic_rune: return LLVMInt32TypeInContext(ctx);
  1378. case Basic_f16: return LLVMHalfTypeInContext(ctx);
  1379. case Basic_f32: return LLVMFloatTypeInContext(ctx);
  1380. case Basic_f64: return LLVMDoubleTypeInContext(ctx);
  1381. case Basic_f16le: return LLVMHalfTypeInContext(ctx);
  1382. case Basic_f32le: return LLVMFloatTypeInContext(ctx);
  1383. case Basic_f64le: return LLVMDoubleTypeInContext(ctx);
  1384. case Basic_f16be: return LLVMHalfTypeInContext(ctx);
  1385. case Basic_f32be: return LLVMFloatTypeInContext(ctx);
  1386. case Basic_f64be: return LLVMDoubleTypeInContext(ctx);
  1387. case Basic_complex32:
  1388. {
  1389. char const *name = "..complex32";
  1390. LLVMTypeRef type = LLVMGetTypeByName(m->mod, name);
  1391. if (type != nullptr) {
  1392. return type;
  1393. }
  1394. type = LLVMStructCreateNamed(ctx, name);
  1395. LLVMTypeRef fields[2] = {
  1396. lb_type(m, t_f16),
  1397. lb_type(m, t_f16),
  1398. };
  1399. LLVMStructSetBody(type, fields, 2, false);
  1400. return type;
  1401. }
  1402. case Basic_complex64:
  1403. {
  1404. char const *name = "..complex64";
  1405. LLVMTypeRef type = LLVMGetTypeByName(m->mod, name);
  1406. if (type != nullptr) {
  1407. return type;
  1408. }
  1409. type = LLVMStructCreateNamed(ctx, name);
  1410. LLVMTypeRef fields[2] = {
  1411. lb_type(m, t_f32),
  1412. lb_type(m, t_f32),
  1413. };
  1414. LLVMStructSetBody(type, fields, 2, false);
  1415. return type;
  1416. }
  1417. case Basic_complex128:
  1418. {
  1419. char const *name = "..complex128";
  1420. LLVMTypeRef type = LLVMGetTypeByName(m->mod, name);
  1421. if (type != nullptr) {
  1422. return type;
  1423. }
  1424. type = LLVMStructCreateNamed(ctx, name);
  1425. LLVMTypeRef fields[2] = {
  1426. lb_type(m, t_f64),
  1427. lb_type(m, t_f64),
  1428. };
  1429. LLVMStructSetBody(type, fields, 2, false);
  1430. return type;
  1431. }
  1432. case Basic_quaternion64:
  1433. {
  1434. char const *name = "..quaternion64";
  1435. LLVMTypeRef type = LLVMGetTypeByName(m->mod, name);
  1436. if (type != nullptr) {
  1437. return type;
  1438. }
  1439. type = LLVMStructCreateNamed(ctx, name);
  1440. LLVMTypeRef fields[4] = {
  1441. lb_type(m, t_f16),
  1442. lb_type(m, t_f16),
  1443. lb_type(m, t_f16),
  1444. lb_type(m, t_f16),
  1445. };
  1446. LLVMStructSetBody(type, fields, 4, false);
  1447. return type;
  1448. }
  1449. case Basic_quaternion128:
  1450. {
  1451. char const *name = "..quaternion128";
  1452. LLVMTypeRef type = LLVMGetTypeByName(m->mod, name);
  1453. if (type != nullptr) {
  1454. return type;
  1455. }
  1456. type = LLVMStructCreateNamed(ctx, name);
  1457. LLVMTypeRef fields[4] = {
  1458. lb_type(m, t_f32),
  1459. lb_type(m, t_f32),
  1460. lb_type(m, t_f32),
  1461. lb_type(m, t_f32),
  1462. };
  1463. LLVMStructSetBody(type, fields, 4, false);
  1464. return type;
  1465. }
  1466. case Basic_quaternion256:
  1467. {
  1468. char const *name = "..quaternion256";
  1469. LLVMTypeRef type = LLVMGetTypeByName(m->mod, name);
  1470. if (type != nullptr) {
  1471. return type;
  1472. }
  1473. type = LLVMStructCreateNamed(ctx, name);
  1474. LLVMTypeRef fields[4] = {
  1475. lb_type(m, t_f64),
  1476. lb_type(m, t_f64),
  1477. lb_type(m, t_f64),
  1478. lb_type(m, t_f64),
  1479. };
  1480. LLVMStructSetBody(type, fields, 4, false);
  1481. return type;
  1482. }
  1483. case Basic_int: return LLVMIntTypeInContext(ctx, 8*cast(unsigned)build_context.int_size);
  1484. case Basic_uint: return LLVMIntTypeInContext(ctx, 8*cast(unsigned)build_context.int_size);
  1485. case Basic_uintptr: return LLVMIntTypeInContext(ctx, 8*cast(unsigned)build_context.ptr_size);
  1486. case Basic_rawptr: return LLVMPointerType(LLVMInt8TypeInContext(ctx), 0);
  1487. case Basic_string:
  1488. {
  1489. char const *name = "..string";
  1490. LLVMTypeRef type = LLVMGetTypeByName(m->mod, name);
  1491. if (type != nullptr) {
  1492. return type;
  1493. }
  1494. type = LLVMStructCreateNamed(ctx, name);
  1495. if (build_context.metrics.ptr_size < build_context.metrics.int_size) {
  1496. GB_ASSERT(build_context.metrics.ptr_size == 4);
  1497. GB_ASSERT(build_context.metrics.int_size == 8);
  1498. LLVMTypeRef fields[3] = {
  1499. LLVMPointerType(lb_type(m, t_u8), 0),
  1500. lb_type(m, t_i32),
  1501. lb_type(m, t_int),
  1502. };
  1503. LLVMStructSetBody(type, fields, 3, false);
  1504. } else {
  1505. LLVMTypeRef fields[2] = {
  1506. LLVMPointerType(lb_type(m, t_u8), 0),
  1507. lb_type(m, t_int),
  1508. };
  1509. LLVMStructSetBody(type, fields, 2, false);
  1510. }
  1511. return type;
  1512. }
  1513. case Basic_cstring: return LLVMPointerType(LLVMInt8TypeInContext(ctx), 0);
  1514. case Basic_any:
  1515. {
  1516. char const *name = "..any";
  1517. LLVMTypeRef type = LLVMGetTypeByName(m->mod, name);
  1518. if (type != nullptr) {
  1519. return type;
  1520. }
  1521. type = LLVMStructCreateNamed(ctx, name);
  1522. LLVMTypeRef fields[2] = {
  1523. lb_type(m, t_rawptr),
  1524. lb_type(m, t_typeid),
  1525. };
  1526. LLVMStructSetBody(type, fields, 2, false);
  1527. return type;
  1528. }
  1529. case Basic_typeid: return LLVMIntTypeInContext(m->ctx, 8*cast(unsigned)build_context.ptr_size);
  1530. // Endian Specific Types
  1531. case Basic_i16le: return LLVMInt16TypeInContext(ctx);
  1532. case Basic_u16le: return LLVMInt16TypeInContext(ctx);
  1533. case Basic_i32le: return LLVMInt32TypeInContext(ctx);
  1534. case Basic_u32le: return LLVMInt32TypeInContext(ctx);
  1535. case Basic_i64le: return LLVMInt64TypeInContext(ctx);
  1536. case Basic_u64le: return LLVMInt64TypeInContext(ctx);
  1537. case Basic_i128le: return LLVMInt128TypeInContext(ctx);
  1538. case Basic_u128le: return LLVMInt128TypeInContext(ctx);
  1539. case Basic_i16be: return LLVMInt16TypeInContext(ctx);
  1540. case Basic_u16be: return LLVMInt16TypeInContext(ctx);
  1541. case Basic_i32be: return LLVMInt32TypeInContext(ctx);
  1542. case Basic_u32be: return LLVMInt32TypeInContext(ctx);
  1543. case Basic_i64be: return LLVMInt64TypeInContext(ctx);
  1544. case Basic_u64be: return LLVMInt64TypeInContext(ctx);
  1545. case Basic_i128be: return LLVMInt128TypeInContext(ctx);
  1546. case Basic_u128be: return LLVMInt128TypeInContext(ctx);
  1547. // Untyped types
  1548. case Basic_UntypedBool: GB_PANIC("Basic_UntypedBool"); break;
  1549. case Basic_UntypedInteger: GB_PANIC("Basic_UntypedInteger"); break;
  1550. case Basic_UntypedFloat: GB_PANIC("Basic_UntypedFloat"); break;
  1551. case Basic_UntypedComplex: GB_PANIC("Basic_UntypedComplex"); break;
  1552. case Basic_UntypedQuaternion: GB_PANIC("Basic_UntypedQuaternion"); break;
  1553. case Basic_UntypedString: GB_PANIC("Basic_UntypedString"); break;
  1554. case Basic_UntypedRune: GB_PANIC("Basic_UntypedRune"); break;
  1555. case Basic_UntypedNil: GB_PANIC("Basic_UntypedNil"); break;
  1556. case Basic_UntypedUninit: GB_PANIC("Basic_UntypedUninit"); break;
  1557. }
  1558. break;
  1559. case Type_Named:
  1560. {
  1561. Type *base = base_type(type->Named.base);
  1562. switch (base->kind) {
  1563. case Type_Basic:
  1564. return lb_type_internal(m, base);
  1565. case Type_Named:
  1566. case Type_Generic:
  1567. GB_PANIC("INVALID TYPE");
  1568. break;
  1569. case Type_Pointer:
  1570. case Type_Array:
  1571. case Type_EnumeratedArray:
  1572. case Type_Slice:
  1573. case Type_DynamicArray:
  1574. case Type_Map:
  1575. case Type_Enum:
  1576. case Type_BitSet:
  1577. case Type_SimdVector:
  1578. return lb_type_internal(m, base);
  1579. // TODO(bill): Deal with this correctly. Can this be named?
  1580. case Type_Proc:
  1581. return lb_type_internal(m, base);
  1582. case Type_Tuple:
  1583. return lb_type_internal(m, base);
  1584. }
  1585. LLVMTypeRef *found = map_get(&m->types, base);
  1586. if (found) {
  1587. LLVMTypeKind kind = LLVMGetTypeKind(*found);
  1588. if (kind == LLVMStructTypeKind) {
  1589. char const *name = alloc_cstring(permanent_allocator(), lb_get_entity_name(m, type->Named.type_name));
  1590. LLVMTypeRef llvm_type = LLVMGetTypeByName(m->mod, name);
  1591. if (llvm_type != nullptr) {
  1592. return llvm_type;
  1593. }
  1594. llvm_type = LLVMStructCreateNamed(ctx, name);
  1595. LLVMTypeRef found_val = *found;
  1596. map_set(&m->types, type, llvm_type);
  1597. lb_clone_struct_type(llvm_type, found_val);
  1598. return llvm_type;
  1599. }
  1600. }
  1601. switch (base->kind) {
  1602. case Type_Struct:
  1603. case Type_Union:
  1604. {
  1605. char const *name = alloc_cstring(permanent_allocator(), lb_get_entity_name(m, type->Named.type_name));
  1606. LLVMTypeRef llvm_type = LLVMGetTypeByName(m->mod, name);
  1607. if (llvm_type != nullptr) {
  1608. return llvm_type;
  1609. }
  1610. llvm_type = LLVMStructCreateNamed(ctx, name);
  1611. map_set(&m->types, type, llvm_type);
  1612. lb_clone_struct_type(llvm_type, lb_type(m, base));
  1613. return llvm_type;
  1614. }
  1615. }
  1616. return lb_type_internal(m, base);
  1617. }
  1618. case Type_Pointer:
  1619. return LLVMPointerType(lb_type(m, type->Pointer.elem), 0);
  1620. case Type_MultiPointer:
  1621. return LLVMPointerType(lb_type(m, type->Pointer.elem), 0);
  1622. case Type_Array: {
  1623. m->internal_type_level += 1;
  1624. LLVMTypeRef t = LLVMArrayType(lb_type(m, type->Array.elem), cast(unsigned)type->Array.count);
  1625. m->internal_type_level -= 1;
  1626. return t;
  1627. }
  1628. case Type_EnumeratedArray: {
  1629. m->internal_type_level += 1;
  1630. LLVMTypeRef t = LLVMArrayType(lb_type(m, type->EnumeratedArray.elem), cast(unsigned)type->EnumeratedArray.count);
  1631. m->internal_type_level -= 1;
  1632. return t;
  1633. }
  1634. case Type_Slice:
  1635. {
  1636. if (bigger_int) {
  1637. LLVMTypeRef fields[3] = {
  1638. LLVMPointerType(lb_type(m, type->Slice.elem), 0), // data
  1639. lb_type_padding_filler(m, build_context.ptr_size, build_context.ptr_size), // padding
  1640. lb_type(m, t_int), // len
  1641. };
  1642. return LLVMStructTypeInContext(ctx, fields, gb_count_of(fields), false);
  1643. } else {
  1644. LLVMTypeRef fields[2] = {
  1645. LLVMPointerType(lb_type(m, type->Slice.elem), 0), // data
  1646. lb_type(m, t_int), // len
  1647. };
  1648. return LLVMStructTypeInContext(ctx, fields, gb_count_of(fields), false);
  1649. }
  1650. }
  1651. break;
  1652. case Type_DynamicArray:
  1653. {
  1654. if (bigger_int) {
  1655. LLVMTypeRef fields[5] = {
  1656. LLVMPointerType(lb_type(m, type->DynamicArray.elem), 0), // data
  1657. lb_type_padding_filler(m, build_context.ptr_size, build_context.ptr_size), // padding
  1658. lb_type(m, t_int), // len
  1659. lb_type(m, t_int), // cap
  1660. lb_type(m, t_allocator), // allocator
  1661. };
  1662. return LLVMStructTypeInContext(ctx, fields, gb_count_of(fields), false);
  1663. } else {
  1664. LLVMTypeRef fields[4] = {
  1665. LLVMPointerType(lb_type(m, type->DynamicArray.elem), 0), // data
  1666. lb_type(m, t_int), // len
  1667. lb_type(m, t_int), // cap
  1668. lb_type(m, t_allocator), // allocator
  1669. };
  1670. return LLVMStructTypeInContext(ctx, fields, gb_count_of(fields), false);
  1671. }
  1672. }
  1673. break;
  1674. case Type_Map:
  1675. init_map_internal_types(type);
  1676. GB_ASSERT(t_raw_map != nullptr);
  1677. return lb_type_internal(m, t_raw_map);
  1678. case Type_Struct:
  1679. {
  1680. type_set_offsets(type);
  1681. i64 full_type_size = type_size_of(type);
  1682. i64 full_type_align = type_align_of(type);
  1683. GB_ASSERT(full_type_size % full_type_align == 0);
  1684. if (type->Struct.is_raw_union) {
  1685. lbStructFieldRemapping field_remapping = {};
  1686. slice_init(&field_remapping, permanent_allocator(), 1);
  1687. LLVMTypeRef fields[1] = {};
  1688. fields[0] = lb_type_padding_filler(m, full_type_size, full_type_align);
  1689. field_remapping[0] = 0;
  1690. LLVMTypeRef struct_type = LLVMStructTypeInContext(ctx, fields, gb_count_of(fields), false);
  1691. map_set(&m->struct_field_remapping, cast(void *)struct_type, field_remapping);
  1692. map_set(&m->struct_field_remapping, cast(void *)type, field_remapping);
  1693. return struct_type;
  1694. }
  1695. lbStructFieldRemapping field_remapping = {};
  1696. slice_init(&field_remapping, permanent_allocator(), type->Struct.fields.count);
  1697. m->internal_type_level += 1;
  1698. defer (m->internal_type_level -= 1);
  1699. auto fields = array_make<LLVMTypeRef>(temporary_allocator(), 0, type->Struct.fields.count*2 + 2);
  1700. if (are_struct_fields_reordered(type)) {
  1701. // NOTE(bill, 2021-10-02): Minor hack to enforce `llvm_const_named_struct` usage correctly
  1702. LLVMTypeRef padding_type = lb_type_padding_filler(m, 0, type_align_of(type));
  1703. array_add(&fields, padding_type);
  1704. }
  1705. i64 padding_offset = 0;
  1706. for (i32 field_index : struct_fields_index_by_increasing_offset(temporary_allocator(), type)) {
  1707. Entity *field = type->Struct.fields[field_index];
  1708. i64 padding = type->Struct.offsets[field_index] - padding_offset;
  1709. if (padding != 0) {
  1710. LLVMTypeRef padding_type = lb_type_padding_filler(m, padding, type_align_of(field->type));
  1711. array_add(&fields, padding_type);
  1712. }
  1713. field_remapping[field_index] = cast(i32)fields.count;
  1714. Type *field_type = field->type;
  1715. if (is_type_proc(field_type)) {
  1716. // NOTE(bill, 2022-11-23): Prevent type cycle declaration (e.g. vtable) of procedures
  1717. // because LLVM is dumb with procedure types
  1718. field_type = t_rawptr;
  1719. }
  1720. array_add(&fields, lb_type(m, field_type));
  1721. if (!type->Struct.is_packed) {
  1722. padding_offset = align_formula(padding_offset, type_align_of(field->type));
  1723. }
  1724. padding_offset += type_size_of(field->type);
  1725. }
  1726. i64 end_padding = full_type_size-padding_offset;
  1727. if (end_padding > 0) {
  1728. array_add(&fields, lb_type_padding_filler(m, end_padding, 1));
  1729. }
  1730. for_array(i, fields) {
  1731. GB_ASSERT(fields[i] != nullptr);
  1732. }
  1733. LLVMTypeRef struct_type = LLVMStructTypeInContext(ctx, fields.data, cast(unsigned)fields.count, type->Struct.is_packed);
  1734. map_set(&m->struct_field_remapping, cast(void *)struct_type, field_remapping);
  1735. map_set(&m->struct_field_remapping, cast(void *)type, field_remapping);
  1736. #if 0
  1737. GB_ASSERT_MSG(lb_sizeof(struct_type) == full_type_size,
  1738. "(%lld) %s vs (%lld) %s",
  1739. cast(long long)lb_sizeof(struct_type), LLVMPrintTypeToString(struct_type),
  1740. cast(long long)full_type_size, type_to_string(type));
  1741. #endif
  1742. return struct_type;
  1743. }
  1744. break;
  1745. case Type_Union:
  1746. if (type->Union.variants.count == 0) {
  1747. return LLVMStructTypeInContext(ctx, nullptr, 0, false);
  1748. } else {
  1749. // NOTE(bill): The zero size array is used to fix the alignment used in a structure as
  1750. // LLVM takes the first element's alignment as the entire alignment (like C)
  1751. i64 align = type_align_of(type);
  1752. i64 size = type_size_of(type);
  1753. gb_unused(size);
  1754. if (is_type_union_maybe_pointer_original_alignment(type)) {
  1755. LLVMTypeRef fields[] = {lb_type(m, type->Union.variants[0])};
  1756. return LLVMStructTypeInContext(ctx, fields, gb_count_of(fields), false);
  1757. }
  1758. unsigned block_size = cast(unsigned)type->Union.variant_block_size;
  1759. auto fields = array_make<LLVMTypeRef>(temporary_allocator(), 0, 3);
  1760. if (is_type_union_maybe_pointer(type)) {
  1761. LLVMTypeRef variant = lb_type(m, type->Union.variants[0]);
  1762. array_add(&fields, variant);
  1763. } else {
  1764. LLVMTypeRef block_type = lb_type_padding_filler(m, block_size, align);
  1765. LLVMTypeRef tag_type = lb_type(m, union_tag_type(type));
  1766. array_add(&fields, block_type);
  1767. array_add(&fields, tag_type);
  1768. i64 used_size = lb_sizeof(block_type) + lb_sizeof(tag_type);
  1769. i64 padding = size - used_size;
  1770. if (padding > 0) {
  1771. LLVMTypeRef padding_type = lb_type_padding_filler(m, padding, align);
  1772. array_add(&fields, padding_type);
  1773. }
  1774. }
  1775. return LLVMStructTypeInContext(ctx, fields.data, cast(unsigned)fields.count, false);
  1776. }
  1777. break;
  1778. case Type_Enum:
  1779. return lb_type(m, base_enum_type(type));
  1780. case Type_Tuple:
  1781. if (type->Tuple.variables.count == 1) {
  1782. return lb_type(m, type->Tuple.variables[0]->type);
  1783. } else {
  1784. m->internal_type_level += 1;
  1785. defer (m->internal_type_level -= 1);
  1786. unsigned field_count = cast(unsigned)(type->Tuple.variables.count);
  1787. LLVMTypeRef *fields = gb_alloc_array(temporary_allocator(), LLVMTypeRef, field_count);
  1788. for_array(i, type->Tuple.variables) {
  1789. Entity *field = type->Tuple.variables[i];
  1790. LLVMTypeRef param_type = nullptr;
  1791. param_type = lb_type(m, field->type);
  1792. fields[i] = param_type;
  1793. }
  1794. return LLVMStructTypeInContext(ctx, fields, field_count, type->Tuple.is_packed);
  1795. }
  1796. case Type_Proc:
  1797. {
  1798. LLVMTypeRef proc_raw_type = lb_type_internal_for_procedures_raw(m, type);
  1799. gb_unused(proc_raw_type);
  1800. return LLVMPointerType(LLVMIntTypeInContext(m->ctx, 8), 0);
  1801. }
  1802. break;
  1803. case Type_BitSet:
  1804. {
  1805. Type *ut = bit_set_to_int(type);
  1806. return lb_type(m, ut);
  1807. }
  1808. case Type_SimdVector:
  1809. return LLVMVectorType(lb_type(m, type->SimdVector.elem), cast(unsigned)type->SimdVector.count);
  1810. case Type_RelativePointer:
  1811. return lb_type_internal(m, type->RelativePointer.base_integer);
  1812. case Type_RelativeSlice:
  1813. {
  1814. LLVMTypeRef base_integer = lb_type_internal(m, type->RelativeSlice.base_integer);
  1815. unsigned field_count = 2;
  1816. LLVMTypeRef *fields = gb_alloc_array(permanent_allocator(), LLVMTypeRef, field_count);
  1817. fields[0] = base_integer;
  1818. fields[1] = base_integer;
  1819. return LLVMStructTypeInContext(ctx, fields, field_count, false);
  1820. }
  1821. case Type_Matrix:
  1822. {
  1823. i64 size = type_size_of(type);
  1824. i64 elem_size = type_size_of(type->Matrix.elem);
  1825. GB_ASSERT(elem_size > 0);
  1826. i64 elem_count = size/elem_size;
  1827. GB_ASSERT_MSG(elem_count > 0, "%s", type_to_string(type));
  1828. m->internal_type_level -= 1;
  1829. LLVMTypeRef elem = lb_type(m, type->Matrix.elem);
  1830. LLVMTypeRef t = LLVMArrayType(elem, cast(unsigned)elem_count);
  1831. m->internal_type_level += 1;
  1832. return t;
  1833. }
  1834. case Type_SoaPointer:
  1835. {
  1836. unsigned field_count = 2;
  1837. if (bigger_int) {
  1838. field_count = 3;
  1839. }
  1840. LLVMTypeRef *fields = gb_alloc_array(permanent_allocator(), LLVMTypeRef, field_count);
  1841. fields[0] = LLVMPointerType(lb_type(m, type->Pointer.elem), 0);
  1842. if (bigger_int) {
  1843. fields[1] = lb_type_padding_filler(m, build_context.ptr_size, build_context.ptr_size);
  1844. fields[2] = LLVMIntTypeInContext(ctx, 8*cast(unsigned)build_context.int_size);
  1845. } else {
  1846. fields[1] = LLVMIntTypeInContext(ctx, 8*cast(unsigned)build_context.int_size);
  1847. }
  1848. return LLVMStructTypeInContext(ctx, fields, field_count, false);
  1849. }
  1850. }
  1851. GB_PANIC("Invalid type %s", type_to_string(type));
  1852. return LLVMInt32TypeInContext(ctx);
  1853. }
  1854. gb_internal LLVMTypeRef lb_type(lbModule *m, Type *type) {
  1855. type = default_type(type);
  1856. mutex_lock(&m->types_mutex);
  1857. defer (mutex_unlock(&m->types_mutex));
  1858. LLVMTypeRef *found = map_get(&m->types, type);
  1859. if (found) {
  1860. return *found;
  1861. }
  1862. LLVMTypeRef llvm_type = nullptr;
  1863. m->internal_type_level += 1;
  1864. llvm_type = lb_type_internal(m, type);
  1865. m->internal_type_level -= 1;
  1866. if (m->internal_type_level == 0) {
  1867. map_set(&m->types, type, llvm_type);
  1868. }
  1869. return llvm_type;
  1870. }
  1871. gb_internal lbFunctionType *lb_get_function_type(lbModule *m, Type *pt) {
  1872. lbFunctionType **ft_found = nullptr;
  1873. ft_found = map_get(&m->function_type_map, pt);
  1874. if (!ft_found) {
  1875. LLVMTypeRef llvm_proc_type = lb_type(m, pt);
  1876. gb_unused(llvm_proc_type);
  1877. ft_found = map_get(&m->function_type_map, pt);
  1878. }
  1879. GB_ASSERT(ft_found != nullptr);
  1880. return *ft_found;
  1881. }
  1882. gb_internal void lb_ensure_abi_function_type(lbModule *m, lbProcedure *p) {
  1883. if (p->abi_function_type != nullptr) {
  1884. return;
  1885. }
  1886. lbFunctionType **ft_found = map_get(&m->function_type_map, p->type);
  1887. if (ft_found == nullptr) {
  1888. LLVMTypeRef llvm_proc_type = lb_type(p->module, p->type);
  1889. gb_unused(llvm_proc_type);
  1890. ft_found = map_get(&m->function_type_map, p->type);
  1891. }
  1892. GB_ASSERT(ft_found != nullptr);
  1893. p->abi_function_type = *ft_found;
  1894. GB_ASSERT(p->abi_function_type != nullptr);
  1895. }
  1896. gb_internal void lb_add_entity(lbModule *m, Entity *e, lbValue val) {
  1897. if (e != nullptr) {
  1898. rw_mutex_lock(&m->values_mutex);
  1899. map_set(&m->values, e, val);
  1900. rw_mutex_unlock(&m->values_mutex);
  1901. }
  1902. }
  1903. gb_internal void lb_add_member(lbModule *m, String const &name, lbValue val) {
  1904. if (name.len > 0) {
  1905. rw_mutex_lock(&m->values_mutex);
  1906. string_map_set(&m->members, name, val);
  1907. rw_mutex_unlock(&m->values_mutex);
  1908. }
  1909. }
  1910. gb_internal void lb_add_procedure_value(lbModule *m, lbProcedure *p) {
  1911. rw_mutex_lock(&m->values_mutex);
  1912. if (p->entity != nullptr) {
  1913. map_set(&m->procedure_values, p->value, p->entity);
  1914. }
  1915. string_map_set(&m->procedures, p->name, p);
  1916. rw_mutex_unlock(&m->values_mutex);
  1917. }
  1918. gb_internal LLVMAttributeRef lb_create_enum_attribute_with_type(LLVMContextRef ctx, char const *name, LLVMTypeRef type) {
  1919. unsigned kind = 0;
  1920. String s = make_string_c(name);
  1921. #if ODIN_LLVM_MINIMUM_VERSION_12
  1922. kind = LLVMGetEnumAttributeKindForName(name, s.len);
  1923. GB_ASSERT_MSG(kind != 0, "unknown attribute: %s", name);
  1924. return LLVMCreateTypeAttribute(ctx, kind, type);
  1925. #else
  1926. // NOTE(2021-02-25, bill); All this attributes require a type associated with them
  1927. // and the current LLVM C API does not expose this functionality yet.
  1928. // It is better to ignore the attributes for the time being
  1929. if (s == "byval") {
  1930. // return nullptr;
  1931. } else if (s == "byref") {
  1932. return nullptr;
  1933. } else if (s == "preallocated") {
  1934. return nullptr;
  1935. } else if (s == "sret") {
  1936. // return nullptr;
  1937. }
  1938. kind = LLVMGetEnumAttributeKindForName(name, s.len);
  1939. GB_ASSERT_MSG(kind != 0, "unknown attribute: %s", name);
  1940. return LLVMCreateEnumAttribute(ctx, kind, 0);
  1941. #endif
  1942. }
  1943. gb_internal LLVMAttributeRef lb_create_enum_attribute(LLVMContextRef ctx, char const *name, u64 value) {
  1944. String s = make_string_c(name);
  1945. // NOTE(2021-02-25, bill); All this attributes require a type associated with them
  1946. // and the current LLVM C API does not expose this functionality yet.
  1947. // It is better to ignore the attributes for the time being
  1948. if (s == "byval") {
  1949. GB_PANIC("lb_create_enum_attribute_with_type should be used for %s", name);
  1950. } else if (s == "byref") {
  1951. GB_PANIC("lb_create_enum_attribute_with_type should be used for %s", name);
  1952. } else if (s == "preallocated") {
  1953. GB_PANIC("lb_create_enum_attribute_with_type should be used for %s", name);
  1954. } else if (s == "sret") {
  1955. GB_PANIC("lb_create_enum_attribute_with_type should be used for %s", name);
  1956. }
  1957. unsigned kind = LLVMGetEnumAttributeKindForName(name, s.len);
  1958. GB_ASSERT_MSG(kind != 0, "unknown attribute: %s", name);
  1959. return LLVMCreateEnumAttribute(ctx, kind, value);
  1960. }
  1961. gb_internal void lb_add_proc_attribute_at_index(lbProcedure *p, isize index, char const *name, u64 value) {
  1962. LLVMAttributeRef attr = lb_create_enum_attribute(p->module->ctx, name, value);
  1963. GB_ASSERT(attr != nullptr);
  1964. LLVMAddAttributeAtIndex(p->value, cast(unsigned)index, attr);
  1965. }
  1966. gb_internal void lb_add_proc_attribute_at_index(lbProcedure *p, isize index, char const *name) {
  1967. lb_add_proc_attribute_at_index(p, index, name, 0);
  1968. }
  1969. gb_internal void lb_add_attribute_to_proc(lbModule *m, LLVMValueRef proc_value, char const *name, u64 value=0) {
  1970. LLVMAddAttributeAtIndex(proc_value, LLVMAttributeIndex_FunctionIndex, lb_create_enum_attribute(m->ctx, name, value));
  1971. }
  1972. gb_internal void lb_add_edge(lbBlock *from, lbBlock *to) {
  1973. LLVMValueRef instr = LLVMGetLastInstruction(from->block);
  1974. if (instr == nullptr || !LLVMIsATerminatorInst(instr)) {
  1975. array_add(&from->succs, to);
  1976. array_add(&to->preds, from);
  1977. }
  1978. }
  1979. gb_internal lbBlock *lb_create_block(lbProcedure *p, char const *name, bool append) {
  1980. lbBlock *b = gb_alloc_item(permanent_allocator(), lbBlock);
  1981. b->block = LLVMCreateBasicBlockInContext(p->module->ctx, name);
  1982. b->appended = false;
  1983. if (append) {
  1984. b->appended = true;
  1985. LLVMAppendExistingBasicBlock(p->value, b->block);
  1986. }
  1987. b->scope = p->curr_scope;
  1988. b->scope_index = p->scope_index;
  1989. b->preds.allocator = heap_allocator();
  1990. b->succs.allocator = heap_allocator();
  1991. array_add(&p->blocks, b);
  1992. return b;
  1993. }
  1994. gb_internal void lb_emit_jump(lbProcedure *p, lbBlock *target_block) {
  1995. if (p->curr_block == nullptr) {
  1996. return;
  1997. }
  1998. LLVMValueRef last_instr = LLVMGetLastInstruction(p->curr_block->block);
  1999. if (last_instr != nullptr && LLVMIsATerminatorInst(last_instr)) {
  2000. return;
  2001. }
  2002. lb_add_edge(p->curr_block, target_block);
  2003. LLVMBuildBr(p->builder, target_block->block);
  2004. p->curr_block = nullptr;
  2005. }
  2006. gb_internal void lb_emit_if(lbProcedure *p, lbValue cond, lbBlock *true_block, lbBlock *false_block) {
  2007. lbBlock *b = p->curr_block;
  2008. if (b == nullptr) {
  2009. return;
  2010. }
  2011. LLVMValueRef last_instr = LLVMGetLastInstruction(p->curr_block->block);
  2012. if (last_instr != nullptr && LLVMIsATerminatorInst(last_instr)) {
  2013. return;
  2014. }
  2015. lb_add_edge(b, true_block);
  2016. lb_add_edge(b, false_block);
  2017. LLVMValueRef cv = cond.value;
  2018. cv = LLVMBuildTruncOrBitCast(p->builder, cv, lb_type(p->module, t_llvm_bool), "");
  2019. LLVMBuildCondBr(p->builder, cv, true_block->block, false_block->block);
  2020. }
  2021. gb_internal gb_inline LLVMTypeRef OdinLLVMGetInternalElementType(LLVMTypeRef type) {
  2022. return LLVMGetElementType(type);
  2023. }
  2024. gb_internal LLVMTypeRef OdinLLVMGetArrayElementType(LLVMTypeRef type) {
  2025. GB_ASSERT(lb_is_type_kind(type, LLVMArrayTypeKind));
  2026. return OdinLLVMGetInternalElementType(type);
  2027. }
  2028. gb_internal LLVMTypeRef OdinLLVMGetVectorElementType(LLVMTypeRef type) {
  2029. GB_ASSERT(lb_is_type_kind(type, LLVMVectorTypeKind));
  2030. return OdinLLVMGetInternalElementType(type);
  2031. }
  2032. gb_internal LLVMValueRef OdinLLVMBuildTransmute(lbProcedure *p, LLVMValueRef val, LLVMTypeRef dst_type) {
  2033. LLVMContextRef ctx = p->module->ctx;
  2034. LLVMTypeRef src_type = LLVMTypeOf(val);
  2035. if (src_type == dst_type) {
  2036. return val;
  2037. }
  2038. i64 src_size = lb_sizeof(src_type);
  2039. i64 dst_size = lb_sizeof(dst_type);
  2040. i64 src_align = lb_alignof(src_type);
  2041. i64 dst_align = lb_alignof(dst_type);
  2042. if (LLVMIsALoadInst(val)) {
  2043. src_align = gb_min(src_align, LLVMGetAlignment(val));
  2044. }
  2045. LLVMTypeKind src_kind = LLVMGetTypeKind(src_type);
  2046. LLVMTypeKind dst_kind = LLVMGetTypeKind(dst_type);
  2047. if (dst_type == LLVMInt1TypeInContext(ctx)) {
  2048. GB_ASSERT(lb_is_type_kind(src_type, LLVMIntegerTypeKind));
  2049. return LLVMBuildICmp(p->builder, LLVMIntNE, val, LLVMConstNull(src_type), "");
  2050. } else if (src_type == LLVMInt1TypeInContext(ctx)) {
  2051. GB_ASSERT(lb_is_type_kind(src_type, LLVMIntegerTypeKind));
  2052. return LLVMBuildZExtOrBitCast(p->builder, val, dst_type, "");
  2053. }
  2054. if (src_size != dst_size) {
  2055. if ((lb_is_type_kind(src_type, LLVMVectorTypeKind) ^ lb_is_type_kind(dst_type, LLVMVectorTypeKind))) {
  2056. // Okay
  2057. } else {
  2058. goto general_end;
  2059. }
  2060. }
  2061. if (src_kind == dst_kind) {
  2062. if (src_kind == LLVMPointerTypeKind) {
  2063. return LLVMBuildPointerCast(p->builder, val, dst_type, "");
  2064. } else if (src_kind == LLVMArrayTypeKind) {
  2065. // ignore
  2066. } else if (src_kind != LLVMStructTypeKind) {
  2067. return LLVMBuildBitCast(p->builder, val, dst_type, "");
  2068. }
  2069. } else {
  2070. if (src_kind == LLVMPointerTypeKind && dst_kind == LLVMIntegerTypeKind) {
  2071. return LLVMBuildPtrToInt(p->builder, val, dst_type, "");
  2072. } else if (src_kind == LLVMIntegerTypeKind && dst_kind == LLVMPointerTypeKind) {
  2073. return LLVMBuildIntToPtr(p->builder, val, dst_type, "");
  2074. }
  2075. }
  2076. general_end:;
  2077. // make the alignment big if necessary
  2078. if (LLVMIsALoadInst(val) && src_align < dst_align) {
  2079. LLVMValueRef val_ptr = LLVMGetOperand(val, 0);
  2080. if (LLVMGetInstructionOpcode(val_ptr) == LLVMAlloca) {
  2081. src_align = gb_max(LLVMGetAlignment(val_ptr), dst_align);
  2082. LLVMSetAlignment(val_ptr, cast(unsigned)src_align);
  2083. }
  2084. }
  2085. src_size = align_formula(src_size, src_align);
  2086. dst_size = align_formula(dst_size, dst_align);
  2087. if (LLVMIsALoadInst(val) && (src_size >= dst_size && src_align >= dst_align)) {
  2088. LLVMValueRef val_ptr = LLVMGetOperand(val, 0);
  2089. val_ptr = LLVMBuildPointerCast(p->builder, val_ptr, LLVMPointerType(dst_type, 0), "");
  2090. LLVMValueRef loaded_val = LLVMBuildLoad2(p->builder, dst_type, val_ptr, "");
  2091. // LLVMSetAlignment(loaded_val, gb_min(src_align, dst_align));
  2092. return loaded_val;
  2093. } else {
  2094. GB_ASSERT(p->decl_block != p->curr_block);
  2095. i64 max_align = gb_max(lb_alignof(src_type), lb_alignof(dst_type));
  2096. max_align = gb_max(max_align, 4);
  2097. LLVMValueRef ptr = llvm_alloca(p, dst_type, max_align);
  2098. LLVMValueRef nptr = LLVMBuildPointerCast(p->builder, ptr, LLVMPointerType(src_type, 0), "");
  2099. LLVMBuildStore(p->builder, val, nptr);
  2100. return LLVMBuildLoad2(p->builder, dst_type, ptr, "");
  2101. }
  2102. }
  2103. gb_internal LLVMValueRef lb_find_or_add_entity_string_ptr(lbModule *m, String const &str) {
  2104. StringHashKey key = string_hash_string(str);
  2105. LLVMValueRef *found = string_map_get(&m->const_strings, key);
  2106. if (found != nullptr) {
  2107. return *found;
  2108. } else {
  2109. LLVMValueRef indices[2] = {llvm_zero(m), llvm_zero(m)};
  2110. LLVMValueRef data = LLVMConstStringInContext(m->ctx,
  2111. cast(char const *)str.text,
  2112. cast(unsigned)str.len,
  2113. false);
  2114. isize max_len = 7+8+1;
  2115. char *name = gb_alloc_array(permanent_allocator(), char, max_len);
  2116. u32 id = m->gen->global_array_index.fetch_add(1);
  2117. isize len = gb_snprintf(name, max_len, "csbs$%x", id);
  2118. len -= 1;
  2119. LLVMTypeRef type = LLVMTypeOf(data);
  2120. LLVMValueRef global_data = LLVMAddGlobal(m->mod, type, name);
  2121. LLVMSetInitializer(global_data, data);
  2122. lb_make_global_private_const(global_data);
  2123. LLVMSetAlignment(global_data, 1);
  2124. LLVMValueRef ptr = LLVMConstInBoundsGEP2(type, global_data, indices, 2);
  2125. string_map_set(&m->const_strings, key, ptr);
  2126. return ptr;
  2127. }
  2128. }
  2129. gb_internal lbValue lb_find_or_add_entity_string(lbModule *m, String const &str) {
  2130. LLVMValueRef ptr = nullptr;
  2131. if (str.len != 0) {
  2132. ptr = lb_find_or_add_entity_string_ptr(m, str);
  2133. } else {
  2134. ptr = LLVMConstNull(lb_type(m, t_u8_ptr));
  2135. }
  2136. LLVMValueRef str_len = LLVMConstInt(lb_type(m, t_int), str.len, true);
  2137. lbValue res = {};
  2138. res.value = llvm_const_string_internal(m, t_string, ptr, str_len);
  2139. res.type = t_string;
  2140. return res;
  2141. }
  2142. gb_internal lbValue lb_find_or_add_entity_string_byte_slice_with_type(lbModule *m, String const &str, Type *slice_type) {
  2143. GB_ASSERT(is_type_slice(slice_type));
  2144. LLVMValueRef indices[2] = {llvm_zero(m), llvm_zero(m)};
  2145. LLVMValueRef data = LLVMConstStringInContext(m->ctx,
  2146. cast(char const *)str.text,
  2147. cast(unsigned)str.len,
  2148. false);
  2149. char *name = nullptr;
  2150. {
  2151. isize max_len = 7+8+1;
  2152. name = gb_alloc_array(permanent_allocator(), char, max_len);
  2153. u32 id = m->gen->global_array_index.fetch_add(1);
  2154. isize len = gb_snprintf(name, max_len, "csbs$%x", id);
  2155. len -= 1;
  2156. }
  2157. LLVMTypeRef type = LLVMTypeOf(data);
  2158. LLVMValueRef global_data = LLVMAddGlobal(m->mod, type, name);
  2159. LLVMSetInitializer(global_data, data);
  2160. lb_make_global_private_const(global_data);
  2161. LLVMSetAlignment(global_data, 1);
  2162. i64 data_len = str.len;
  2163. LLVMValueRef ptr = nullptr;
  2164. if (data_len != 0) {
  2165. ptr = LLVMConstInBoundsGEP2(type, global_data, indices, 2);
  2166. } else {
  2167. ptr = LLVMConstNull(lb_type(m, t_u8_ptr));
  2168. }
  2169. if (!is_type_u8_slice(slice_type)) {
  2170. Type *bt = base_type(slice_type);
  2171. Type *elem = bt->Slice.elem;
  2172. i64 sz = type_size_of(elem);
  2173. GB_ASSERT(sz > 0);
  2174. ptr = LLVMConstPointerCast(ptr, lb_type(m, alloc_type_pointer(elem)));
  2175. data_len /= sz;
  2176. }
  2177. LLVMValueRef len = LLVMConstInt(lb_type(m, t_int), data_len, true);
  2178. LLVMValueRef values[2] = {ptr, len};
  2179. lbValue res = {};
  2180. res.value = llvm_const_named_struct(m, slice_type, values, 2);
  2181. res.type = slice_type;
  2182. return res;
  2183. }
  2184. gb_internal lbValue lb_find_ident(lbProcedure *p, lbModule *m, Entity *e, Ast *expr) {
  2185. if (e->flags & EntityFlag_Param) {
  2186. // NOTE(bill): Bypass the stack copied variable for
  2187. // direct parameters as there is no need for the direct load
  2188. auto *found = map_get(&p->direct_parameters, e);
  2189. if (found) {
  2190. return *found;
  2191. }
  2192. }
  2193. lbValue *found = nullptr;
  2194. rw_mutex_shared_lock(&m->values_mutex);
  2195. found = map_get(&m->values, e);
  2196. rw_mutex_shared_unlock(&m->values_mutex);
  2197. if (found) {
  2198. auto v = *found;
  2199. // NOTE(bill): This is because pointers are already pointers in LLVM
  2200. if (is_type_proc(v.type)) {
  2201. return v;
  2202. }
  2203. return lb_emit_load(p, v);
  2204. } else if (e != nullptr && e->kind == Entity_Variable) {
  2205. return lb_addr_load(p, lb_build_addr(p, expr));
  2206. }
  2207. if (e->kind == Entity_Procedure) {
  2208. return lb_find_procedure_value_from_entity(m, e);
  2209. }
  2210. if (USE_SEPARATE_MODULES) {
  2211. lbModule *other_module = lb_module_of_entity(m->gen, e);
  2212. if (other_module != m) {
  2213. String name = lb_get_entity_name(other_module, e);
  2214. lb_set_entity_from_other_modules_linkage_correctly(other_module, e, name);
  2215. lbValue g = {};
  2216. g.value = LLVMAddGlobal(m->mod, lb_type(m, e->type), alloc_cstring(permanent_allocator(), name));
  2217. g.type = alloc_type_pointer(e->type);
  2218. LLVMSetLinkage(g.value, LLVMExternalLinkage);
  2219. lb_add_entity(m, e, g);
  2220. lb_add_member(m, name, g);
  2221. return lb_emit_load(p, g);
  2222. }
  2223. }
  2224. String pkg = {};
  2225. if (e->pkg) {
  2226. pkg = e->pkg->name;
  2227. }
  2228. gb_printf_err("Error in: %s\n", token_pos_to_string(ast_token(expr).pos));
  2229. GB_PANIC("nullptr value for expression from identifier: %.*s.%.*s (%p) : %s @ %p", LIT(pkg), LIT(e->token.string), e, type_to_string(e->type), expr);
  2230. return {};
  2231. }
  2232. gb_internal lbValue lb_find_procedure_value_from_entity(lbModule *m, Entity *e) {
  2233. lbGenerator *gen = m->gen;
  2234. GB_ASSERT(is_type_proc(e->type));
  2235. e = strip_entity_wrapping(e);
  2236. GB_ASSERT(e != nullptr);
  2237. GB_ASSERT(e->kind == Entity_Procedure);
  2238. lbValue *found = nullptr;
  2239. rw_mutex_shared_lock(&m->values_mutex);
  2240. found = map_get(&m->values, e);
  2241. rw_mutex_shared_unlock(&m->values_mutex);
  2242. if (found) {
  2243. return *found;
  2244. }
  2245. bool ignore_body = false;
  2246. lbModule *other_module = m;
  2247. if (USE_SEPARATE_MODULES) {
  2248. other_module = lb_module_of_entity(gen, e);
  2249. }
  2250. if (other_module == m) {
  2251. debugf("Missing Procedure (lb_find_procedure_value_from_entity): %.*s module %p\n", LIT(e->token.string), m);
  2252. }
  2253. ignore_body = other_module != m;
  2254. lbProcedure *missing_proc = lb_create_procedure(m, e, ignore_body);
  2255. if (ignore_body) {
  2256. mutex_lock(&gen->anonymous_proc_lits_mutex);
  2257. defer (mutex_unlock(&gen->anonymous_proc_lits_mutex));
  2258. GB_ASSERT(other_module != nullptr);
  2259. rw_mutex_shared_lock(&other_module->values_mutex);
  2260. auto *found = map_get(&other_module->values, e);
  2261. rw_mutex_shared_unlock(&other_module->values_mutex);
  2262. if (found == nullptr) {
  2263. // THIS IS THE RACE CONDITION
  2264. lbProcedure *missing_proc_in_other_module = lb_create_procedure(other_module, e, false);
  2265. array_add(&other_module->missing_procedures_to_check, missing_proc_in_other_module);
  2266. }
  2267. } else {
  2268. array_add(&m->missing_procedures_to_check, missing_proc);
  2269. }
  2270. rw_mutex_shared_lock(&m->values_mutex);
  2271. found = map_get(&m->values, e);
  2272. rw_mutex_shared_unlock(&m->values_mutex);
  2273. if (found) {
  2274. return *found;
  2275. }
  2276. GB_PANIC("Error in: %s, missing procedure %.*s\n", token_pos_to_string(e->token.pos), LIT(e->token.string));
  2277. return {};
  2278. }
  2279. gb_internal lbValue lb_generate_anonymous_proc_lit(lbModule *m, String const &prefix_name, Ast *expr, lbProcedure *parent) {
  2280. lbGenerator *gen = m->gen;
  2281. mutex_lock(&gen->anonymous_proc_lits_mutex);
  2282. defer (mutex_unlock(&gen->anonymous_proc_lits_mutex));
  2283. TokenPos pos = ast_token(expr).pos;
  2284. lbProcedure **found = map_get(&gen->anonymous_proc_lits, expr);
  2285. if (found) {
  2286. return lb_find_procedure_value_from_entity(m, (*found)->entity);
  2287. }
  2288. ast_node(pl, ProcLit, expr);
  2289. // NOTE(bill): Generate a new name
  2290. // parent$count
  2291. isize name_len = prefix_name.len + 6 + 11;
  2292. char *name_text = gb_alloc_array(permanent_allocator(), char, name_len);
  2293. static std::atomic<i32> name_id;
  2294. name_len = gb_snprintf(name_text, name_len, "%.*s$anon-%d", LIT(prefix_name), 1+name_id.fetch_add(1));
  2295. String name = make_string((u8 *)name_text, name_len-1);
  2296. Type *type = type_of_expr(expr);
  2297. GB_ASSERT(pl->decl->entity == nullptr);
  2298. Token token = {};
  2299. token.pos = ast_token(expr).pos;
  2300. token.kind = Token_Ident;
  2301. token.string = name;
  2302. Entity *e = alloc_entity_procedure(nullptr, token, type, pl->tags);
  2303. e->file = expr->file();
  2304. // NOTE(bill): this is to prevent a race condition since these procedure literals can be created anywhere at any time
  2305. pl->decl->code_gen_module = m;
  2306. e->decl_info = pl->decl;
  2307. pl->decl->entity = e;
  2308. e->flags |= EntityFlag_ProcBodyChecked;
  2309. lbProcedure *p = lb_create_procedure(m, e);
  2310. GB_ASSERT(e->code_gen_module == m);
  2311. lbValue value = {};
  2312. value.value = p->value;
  2313. value.type = p->type;
  2314. map_set(&gen->anonymous_proc_lits, expr, p);
  2315. array_add(&m->procedures_to_generate, p);
  2316. if (parent != nullptr) {
  2317. array_add(&parent->children, p);
  2318. } else {
  2319. string_map_set(&m->members, name, value);
  2320. }
  2321. return value;
  2322. }
  2323. gb_internal lbAddr lb_add_global_generated(lbModule *m, Type *type, lbValue value, Entity **entity_) {
  2324. GB_ASSERT(type != nullptr);
  2325. type = default_type(type);
  2326. isize max_len = 7+8+1;
  2327. u8 *str = cast(u8 *)gb_alloc_array(permanent_allocator(), u8, max_len);
  2328. u32 id = m->gen->global_generated_index.fetch_add(1);
  2329. isize len = gb_snprintf(cast(char *)str, max_len, "ggv$%x", id);
  2330. String name = make_string(str, len-1);
  2331. Scope *scope = nullptr;
  2332. Entity *e = alloc_entity_variable(scope, make_token_ident(name), type);
  2333. lbValue g = {};
  2334. g.type = alloc_type_pointer(type);
  2335. g.value = LLVMAddGlobal(m->mod, lb_type(m, type), cast(char const *)str);
  2336. if (value.value != nullptr) {
  2337. GB_ASSERT_MSG(LLVMIsConstant(value.value), LLVMPrintValueToString(value.value));
  2338. LLVMSetInitializer(g.value, value.value);
  2339. } else {
  2340. LLVMSetInitializer(g.value, LLVMConstNull(lb_type(m, type)));
  2341. }
  2342. lb_add_entity(m, e, g);
  2343. lb_add_member(m, name, g);
  2344. if (entity_) *entity_ = e;
  2345. return lb_addr(g);
  2346. }
  2347. gb_internal lbValue lb_find_runtime_value(lbModule *m, String const &name) {
  2348. AstPackage *p = m->info->runtime_package;
  2349. Entity *e = scope_lookup_current(p->scope, name);
  2350. return lb_find_value_from_entity(m, e);
  2351. }
  2352. gb_internal lbValue lb_find_package_value(lbModule *m, String const &pkg, String const &name) {
  2353. Entity *e = find_entity_in_pkg(m->info, pkg, name);
  2354. return lb_find_value_from_entity(m, e);
  2355. }
  2356. gb_internal lbValue lb_generate_local_array(lbProcedure *p, Type *elem_type, i64 count, bool zero_init) {
  2357. lbAddr addr = lb_add_local_generated(p, alloc_type_array(elem_type, count), zero_init);
  2358. return lb_addr_get_ptr(p, addr);
  2359. }
  2360. gb_internal lbValue lb_find_value_from_entity(lbModule *m, Entity *e) {
  2361. e = strip_entity_wrapping(e);
  2362. GB_ASSERT(e != nullptr);
  2363. GB_ASSERT(e->token.string != "_");
  2364. if (e->kind == Entity_Procedure) {
  2365. return lb_find_procedure_value_from_entity(m, e);
  2366. }
  2367. lbValue *found = nullptr;
  2368. rw_mutex_shared_lock(&m->values_mutex);
  2369. found = map_get(&m->values, e);
  2370. rw_mutex_shared_unlock(&m->values_mutex);
  2371. if (found) {
  2372. return *found;
  2373. }
  2374. if (USE_SEPARATE_MODULES) {
  2375. lbModule *other_module = lb_module_of_entity(m->gen, e);
  2376. // TODO(bill): correct this logic
  2377. bool is_external = other_module != m;
  2378. if (!is_external) {
  2379. if (e->code_gen_module != nullptr) {
  2380. other_module = e->code_gen_module;
  2381. } else {
  2382. other_module = nullptr;
  2383. }
  2384. is_external = other_module != m;
  2385. }
  2386. if (is_external) {
  2387. String name = lb_get_entity_name(other_module, e);
  2388. lbValue g = {};
  2389. g.value = LLVMAddGlobal(m->mod, lb_type(m, e->type), alloc_cstring(permanent_allocator(), name));
  2390. g.type = alloc_type_pointer(e->type);
  2391. lb_add_entity(m, e, g);
  2392. lb_add_member(m, name, g);
  2393. LLVMSetLinkage(g.value, LLVMExternalLinkage);
  2394. lb_set_entity_from_other_modules_linkage_correctly(other_module, e, name);
  2395. // LLVMSetLinkage(other_g.value, LLVMExternalLinkage);
  2396. if (e->Variable.thread_local_model != "") {
  2397. LLVMSetThreadLocal(g.value, true);
  2398. String m = e->Variable.thread_local_model;
  2399. LLVMThreadLocalMode mode = LLVMGeneralDynamicTLSModel;
  2400. if (m == "default") {
  2401. mode = LLVMGeneralDynamicTLSModel;
  2402. } else if (m == "localdynamic") {
  2403. mode = LLVMLocalDynamicTLSModel;
  2404. } else if (m == "initialexec") {
  2405. mode = LLVMInitialExecTLSModel;
  2406. } else if (m == "localexec") {
  2407. mode = LLVMLocalExecTLSModel;
  2408. } else {
  2409. GB_PANIC("Unhandled thread local mode %.*s", LIT(m));
  2410. }
  2411. LLVMSetThreadLocalMode(g.value, mode);
  2412. }
  2413. return g;
  2414. }
  2415. }
  2416. GB_PANIC("\n\tError in: %s, missing value '%.*s'\n", token_pos_to_string(e->token.pos), LIT(e->token.string));
  2417. return {};
  2418. }
  2419. gb_internal lbValue lb_generate_global_array(lbModule *m, Type *elem_type, i64 count, String prefix, i64 id) {
  2420. Token token = {Token_Ident};
  2421. isize name_len = prefix.len + 1 + 20;
  2422. auto suffix_id = cast(unsigned long long)id;
  2423. char *text = gb_alloc_array(permanent_allocator(), char, name_len+1);
  2424. gb_snprintf(text, name_len,
  2425. "%.*s-%llu", LIT(prefix), suffix_id);
  2426. text[name_len] = 0;
  2427. String s = make_string_c(text);
  2428. Type *t = alloc_type_array(elem_type, count);
  2429. lbValue g = {};
  2430. g.value = LLVMAddGlobal(m->mod, lb_type(m, t), text);
  2431. g.type = alloc_type_pointer(t);
  2432. LLVMSetInitializer(g.value, LLVMConstNull(lb_type(m, t)));
  2433. LLVMSetLinkage(g.value, LLVMPrivateLinkage);
  2434. LLVMSetUnnamedAddress(g.value, LLVMGlobalUnnamedAddr);
  2435. string_map_set(&m->members, s, g);
  2436. return g;
  2437. }
  2438. gb_internal lbValue lb_build_cond(lbProcedure *p, Ast *cond, lbBlock *true_block, lbBlock *false_block) {
  2439. GB_ASSERT(cond != nullptr);
  2440. GB_ASSERT(true_block != nullptr);
  2441. GB_ASSERT(false_block != nullptr);
  2442. // Use to signal not to do compile time short circuit for consts
  2443. lbValue no_comptime_short_circuit = {};
  2444. switch (cond->kind) {
  2445. case_ast_node(pe, ParenExpr, cond);
  2446. return lb_build_cond(p, pe->expr, true_block, false_block);
  2447. case_end;
  2448. case_ast_node(ue, UnaryExpr, cond);
  2449. if (ue->op.kind == Token_Not) {
  2450. lbValue cond_val = lb_build_cond(p, ue->expr, false_block, true_block);
  2451. if (cond_val.value && LLVMIsConstant(cond_val.value)) {
  2452. return lb_const_bool(p->module, cond_val.type, LLVMConstIntGetZExtValue(cond_val.value) == 0);
  2453. }
  2454. return no_comptime_short_circuit;
  2455. }
  2456. case_end;
  2457. case_ast_node(be, BinaryExpr, cond);
  2458. if (be->op.kind == Token_CmpAnd) {
  2459. lbBlock *block = lb_create_block(p, "cmp.and");
  2460. lb_build_cond(p, be->left, block, false_block);
  2461. lb_start_block(p, block);
  2462. lb_build_cond(p, be->right, true_block, false_block);
  2463. return no_comptime_short_circuit;
  2464. } else if (be->op.kind == Token_CmpOr) {
  2465. lbBlock *block = lb_create_block(p, "cmp.or");
  2466. lb_build_cond(p, be->left, true_block, block);
  2467. lb_start_block(p, block);
  2468. lb_build_cond(p, be->right, true_block, false_block);
  2469. return no_comptime_short_circuit;
  2470. }
  2471. case_end;
  2472. }
  2473. lbValue v = {};
  2474. if (lb_is_expr_untyped_const(cond)) {
  2475. v = lb_expr_untyped_const_to_typed(p->module, cond, t_llvm_bool);
  2476. } else {
  2477. v = lb_build_expr(p, cond);
  2478. }
  2479. v = lb_emit_conv(p, v, t_llvm_bool);
  2480. lb_emit_if(p, v, true_block, false_block);
  2481. return v;
  2482. }
  2483. gb_internal lbAddr lb_add_local(lbProcedure *p, Type *type, Entity *e, bool zero_init, bool force_no_init) {
  2484. GB_ASSERT(p->decl_block != p->curr_block);
  2485. LLVMPositionBuilderAtEnd(p->builder, p->decl_block->block);
  2486. char const *name = "";
  2487. if (e != nullptr && e->token.string.len > 0 && e->token.string != "_") {
  2488. // NOTE(bill): for debugging purposes only
  2489. name = alloc_cstring(permanent_allocator(), e->token.string);
  2490. }
  2491. LLVMTypeRef llvm_type = lb_type(p->module, type);
  2492. unsigned alignment = cast(unsigned)gb_max(type_align_of(type), lb_alignof(llvm_type));
  2493. if (is_type_matrix(type)) {
  2494. alignment *= 2; // NOTE(bill): Just in case
  2495. }
  2496. LLVMValueRef ptr = llvm_alloca(p, llvm_type, alignment, name);
  2497. if (!zero_init && !force_no_init) {
  2498. // If there is any padding of any kind, just zero init regardless of zero_init parameter
  2499. LLVMTypeKind kind = LLVMGetTypeKind(llvm_type);
  2500. if (kind == LLVMArrayTypeKind) {
  2501. kind = LLVMGetTypeKind(lb_type(p->module, core_array_type(type)));
  2502. }
  2503. if (kind == LLVMStructTypeKind) {
  2504. i64 sz = type_size_of(type);
  2505. if (type_size_of_struct_pretend_is_packed(type) != sz) {
  2506. zero_init = true;
  2507. }
  2508. }
  2509. }
  2510. lbValue val = {};
  2511. val.value = ptr;
  2512. val.type = alloc_type_pointer(type);
  2513. if (e != nullptr) {
  2514. lb_add_entity(p->module, e, val);
  2515. lb_add_debug_local_variable(p, ptr, type, e->token);
  2516. }
  2517. if (zero_init) {
  2518. lb_mem_zero_ptr(p, ptr, type, alignment);
  2519. }
  2520. return lb_addr(val);
  2521. }
  2522. gb_internal lbAddr lb_add_local_generated(lbProcedure *p, Type *type, bool zero_init) {
  2523. return lb_add_local(p, type, nullptr, zero_init);
  2524. }
  2525. gb_internal lbAddr lb_add_local_generated_temp(lbProcedure *p, Type *type, i64 min_alignment) {
  2526. lbAddr res = lb_add_local(p, type, nullptr, false, true);
  2527. lb_try_update_alignment(res.addr, cast(unsigned)min_alignment);
  2528. return res;
  2529. }
  2530. gb_internal void lb_set_linkage_from_entity_flags(lbModule *m, LLVMValueRef value, u64 flags) {
  2531. if (flags & EntityFlag_CustomLinkage_Internal) {
  2532. LLVMSetLinkage(value, LLVMInternalLinkage);
  2533. } else if (flags & EntityFlag_CustomLinkage_Strong) {
  2534. LLVMSetLinkage(value, LLVMExternalLinkage);
  2535. } else if (flags & EntityFlag_CustomLinkage_Weak) {
  2536. LLVMSetLinkage(value, LLVMExternalWeakLinkage);
  2537. } else if (flags & EntityFlag_CustomLinkage_LinkOnce) {
  2538. LLVMSetLinkage(value, LLVMLinkOnceAnyLinkage);
  2539. }
  2540. }